{"id":1909,"date":"2025-08-25T02:07:24","date_gmt":"2025-08-25T02:07:24","guid":{"rendered":"https:\/\/flj-pcb.com\/?page_id=1909"},"modified":"2025-09-25T08:26:33","modified_gmt":"2025-09-25T08:26:33","slug":"high-frequency-pcb","status":"publish","type":"page","link":"https:\/\/flj-pcb.com\/es\/pcb-manufacturer\/high-frequency-pcb\/","title":{"rendered":"PCB de alta frecuencia: bajas p\u00e9rdidas, alta velocidad"},"content":{"rendered":"<div data-elementor-type=\"wp-page\" data-elementor-id=\"1909\" class=\"elementor elementor-1909\" data-elementor-post-type=\"page\">\n\t\t\t\t<div class=\"elementor-element elementor-element-2fe9c4e e-flex e-con-boxed e-con e-parent\" data-id=\"2fe9c4e\" data-element_type=\"container\">\n\t\t\t\t\t<div class=\"e-con-inner\">\n\t\t\t\t<div class=\"elementor-element elementor-element-f058cdb elementor-widget elementor-widget-text-editor\" data-id=\"f058cdb\" data-element_type=\"widget\" data-widget_type=\"text-editor.default\">\n\t\t\t\t<div class=\"elementor-widget-container\">\n\t\t\t\t\t\t\t\t\t<h2 data-start=\"315\" data-end=\"345\">\u00bfQu\u00e9 es un circuito impreso de alta frecuencia?<\/h2><p data-start=\"347\" data-end=\"753\">A<a href=\"https:\/\/en.wikipedia.org\/wiki\/Printed_circuit_board#High_frequency_PCBs\" target=\"_blank\" rel=\"noopener\"> PCB de alta frecuencia<\/a> es una placa de circuito impreso (PCB) especial que se utiliza para se\u00f1ales de alta frecuencia electromagn\u00e9tica. Estas placas son para frecuencias de radio superiores a unos 300 MHz (longitud de onda &lt; 1 m) y para frecuencias de microondas superiores a unos 3 GHz (longitud de onda &lt; 0,1 m). Se fabrican en laminados revestidos de cobre para microondas. La producci\u00f3n puede utilizar algunos pasos est\u00e1ndar de PCB r\u00edgidos o utilizar m\u00e9todos especiales para estos materiales.<\/p><p data-start=\"347\" data-end=\"753\"><img fetchpriority=\"high\" decoding=\"async\" class=\"alignnone size-full wp-image-2728\" src=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/High-Frequency-PCB.webp\" alt=\"High-Frequency PCB\" width=\"600\" height=\"372\" srcset=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/High-Frequency-PCB.webp 600w, https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/High-Frequency-PCB-300x186.webp 300w\" sizes=\"(max-width: 600px) 100vw, 600px\" \/><\/p><p data-start=\"755\" data-end=\"1165\">Con los r\u00e1pidos avances tecnol\u00f3gicos, cada vez hay m\u00e1s dispositivos que funcionan en la banda de microondas (&gt;1 GHz) e incluso en rangos de ondas milim\u00e9tricas (&gt;30 GHz). Esto significa que las frecuencias aumentan y las necesidades de materiales tambi\u00e9n. Los materiales de base deben tener muy buenas propiedades el\u00e9ctricas y buena estabilidad qu\u00edmica. A medida que aumenta la frecuencia de la se\u00f1al, la p\u00e9rdida de material debe mantenerse muy baja. Con la llegada de la 5G, los materiales de alta frecuencia cobraron mayor importancia.<\/p><hr data-start=\"1167\" data-end=\"1170\" \/><h1 data-start=\"1172\" data-end=\"1207\">Ventajas de las placas de circuito impreso de alta frecuencia<\/h1><p data-start=\"1209\" data-end=\"1430\"><strong data-start=\"1209\" data-end=\"1231\">1. 1. Alta eficacia<\/strong><br data-start=\"1231\" data-end=\"1234\" \/>Los materiales con baja constante diel\u00e9ctrica provocan bajas p\u00e9rdidas. El moderno calentamiento por inducci\u00f3n y otros m\u00e9todos permiten alcanzar los objetivos y mantener una alta eficiencia. Estas placas tambi\u00e9n ayudan a reducir los residuos y se ajustan a los objetivos ecol\u00f3gicos.<\/p><p data-start=\"1432\" data-end=\"1677\"><strong data-start=\"1432\" data-end=\"1449\">2. Alta velocidad<\/strong><br data-start=\"1449\" data-end=\"1452\" \/>La velocidad de la se\u00f1al es inversamente proporcional a la ra\u00edz cuadrada de la constante diel\u00e9ctrica. Una constante diel\u00e9ctrica m\u00e1s baja significa una transmisi\u00f3n m\u00e1s r\u00e1pida. Los materiales especiales mantienen la constante diel\u00e9ctrica baja y estable. Esto ayuda a la transferencia de la se\u00f1al.<\/p><p data-start=\"1679\" data-end=\"1970\"><strong data-start=\"1679\" data-end=\"1723\">3. Buen control del calentamiento o el procesamiento<\/strong><br data-start=\"1723\" data-end=\"1726\" \/>Las placas de alta frecuencia se utilizan en muchos campos que necesitan un calentamiento preciso de piezas met\u00e1licas. Puede controlar la profundidad y el lugar de calentamiento. Puede centrarse en el calentamiento superficial o profundo. Puede calentar de forma concentrada o dispersa. La placa permite un control preciso.<\/p><p data-start=\"1972\" data-end=\"2316\"><strong data-start=\"1972\" data-end=\"1996\">4. Gran durabilidad<\/strong><br data-start=\"1996\" data-end=\"1999\" \/>La constante diel\u00e9ctrica y el material diel\u00e9ctrico dependen del entorno. En zonas h\u00famedas, la humedad da\u00f1a las tarjetas. Las placas de alta frecuencia fabricadas con materiales de baja absorci\u00f3n de agua resisten esta situaci\u00f3n. Resisten la corrosi\u00f3n qu\u00edmica, la humedad, el calor elevado y tienen una alta resistencia al pelado. Estas cualidades las hacen resistentes en entornos dif\u00edciles.<\/p><hr data-start=\"2318\" data-end=\"2321\" \/><h1 data-start=\"2323\" data-end=\"2375\">Materiales comunes para placas de circuito impreso de alta frecuencia y alta velocidad<\/h1><div class=\"_tableContainer_sk2ct_1\"><div class=\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\" tabindex=\"-1\"><table class=\"w-fit min-w-(--thread-content-width)\" data-start=\"2377\" data-end=\"2727\"><thead data-start=\"2377\" data-end=\"2419\"><tr data-start=\"2377\" data-end=\"2419\"><th data-start=\"2377\" data-end=\"2393\" data-col-size=\"sm\">Marca \/ Fabricante<\/th><th data-start=\"2393\" data-end=\"2419\" data-col-size=\"md\">Series \/ tipos t\u00edpicos<\/th><\/tr><\/thead><tbody data-start=\"2430\" data-end=\"2727\"><tr data-start=\"2430\" data-end=\"2473\"><td data-start=\"2430\" data-end=\"2439\" data-col-size=\"sm\">Rogers<\/td><td data-col-size=\"md\" data-start=\"2439\" data-end=\"2473\">RO4003, RO3003, RO4350, RO5880<\/td><\/tr><tr data-start=\"2474\" data-end=\"2537\"><td data-start=\"2474\" data-end=\"2509\" data-col-size=\"sm\">TUC (Taiyao \/ TaYa o marca TUC)<\/td><td data-col-size=\"md\" data-start=\"2509\" data-end=\"2537\">TUC862, 872SLK, 883, 933<\/td><\/tr><tr data-start=\"2538\" data-end=\"2574\"><td data-start=\"2538\" data-end=\"2550\" data-col-size=\"sm\">Panasonic<\/td><td data-col-size=\"md\" data-start=\"2550\" data-end=\"2574\">Megtron 4, Megtron 6<\/td><\/tr><tr data-start=\"2575\" data-end=\"2608\"><td data-start=\"2575\" data-end=\"2583\" data-col-size=\"sm\">Isola<\/td><td data-col-size=\"md\" data-start=\"2583\" data-end=\"2608\">FR408HR, IS620, IS680<\/td><\/tr><tr data-start=\"2609\" data-end=\"2643\"><td data-start=\"2609\" data-end=\"2617\" data-col-size=\"sm\">Nelco<\/td><td data-start=\"2617\" data-end=\"2643\" data-col-size=\"md\">N4000-13, N4000-13EPSI<\/td><\/tr><tr data-start=\"2644\" data-end=\"2727\"><td data-start=\"2644\" data-end=\"2670\" data-col-size=\"sm\">Fabricantes nacionales (China)<\/td><td data-col-size=\"md\" data-start=\"2670\" data-end=\"2727\">Dongguan Shengyi, Taizhou Wangling, Taixing Microondas<\/td><\/tr><\/tbody><\/table><\/div><\/div><p data-start=\"2729\" data-end=\"2849\">(Utilice estos materiales de ejemplo como punto de partida. Cada dise\u00f1o necesita la elecci\u00f3n de material adecuada para la frecuencia y la disposici\u00f3n).<\/p><hr data-start=\"2851\" data-end=\"2854\" \/><h1 data-start=\"2856\" data-end=\"2913\">Diferencia entre las tarjetas de alta frecuencia y las tarjetas HDI<\/h1><p data-start=\"2915\" data-end=\"3218\">Las placas de circuito impreso de alta frecuencia se utilizan en radares, instrumentos de prueba, sistemas anticolisi\u00f3n para autom\u00f3viles, sat\u00e9lites de comunicaciones, sistemas inal\u00e1mbricos y otros campos. Las placas HDI (High Density Interconnect) son para dispositivos peque\u00f1os con muchos componentes. HDI suele utilizar placas de doble cara en productos de peque\u00f1o volumen.<\/p><p data-start=\"3220\" data-end=\"3555\">Una placa de alta frecuencia necesita un control de procesos y una precisi\u00f3n muy elevados. Muchas veces los dise\u00f1adores parten de epoxi de vidrio FR-4, pero las verdaderas placas de alta frecuencia utilizan laminados especiales. La placa debe tener una constante diel\u00e9ctrica peque\u00f1a y estable, baja p\u00e9rdida diel\u00e9ctrica, baja absorci\u00f3n de agua, alta tolerancia a la temperatura y buena resistencia a la corrosi\u00f3n.<\/p><p data-start=\"3557\" data-end=\"3824\">Una placa HDI utiliza micro v\u00edas ciegas para alcanzar una alta densidad de enrutamiento. Dispone de rutas internas y externas que se conectan mediante taladrado y chapado. HDI es para productos compactos. Algunos dise\u00f1os de HDI utilizan m\u00f3dulos paralelos modulares y un potente control DSP para las funciones de alimentaci\u00f3n y carga.<\/p><hr data-start=\"3826\" data-end=\"3829\" \/><h1 data-start=\"3831\" data-end=\"3880\">Tipos \/ Clasificaci\u00f3n de las tarjetas de alta frecuencia<\/h1><p data-start=\"3882\" data-end=\"3938\">A continuaci\u00f3n figuran los tipos m\u00e1s comunes y notas sobre su tratamiento:<\/p><p data-start=\"3940\" data-end=\"3989\"><strong data-start=\"3940\" data-end=\"3987\">1. Termoestables rellenos de polvo (rellenos de cer\u00e1mica)<\/strong><\/p><ul data-start=\"3990\" data-end=\"4260\"><li data-start=\"3990\" data-end=\"4078\"><p data-start=\"3992\" data-end=\"4078\">Materiales y proveedores: Rogers 4350B \/ 4003C; Arlon 25N \/ 25FR; Taconic serie TLG.<img decoding=\"async\" class=\"size-full wp-image-2730 aligncenter\" src=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Rogers-4350b.webp\" alt=\"Rogers 4350b\" width=\"600\" height=\"308\" srcset=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Rogers-4350b.webp 600w, https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Rogers-4350b-300x154.webp 300w\" sizes=\"(max-width: 600px) 100vw, 600px\" \/><\/p><\/li><li data-start=\"4079\" data-end=\"4260\"><p data-start=\"4081\" data-end=\"4260\">Procesamiento: Los pasos son similares a los laminados de vidrio epoxi FR-4. Sin embargo, las placas son fr\u00e1giles y f\u00e1ciles de romper. La vida \u00fatil de las brocas y fresas es de unos 20%. Manipular con cuidado.<\/p><\/li><\/ul><p data-start=\"4262\" data-end=\"4309\"><strong data-start=\"4262\" data-end=\"4307\">2. PTFE (politetrafluoroetileno, tefl\u00f3n)<\/strong><\/p><ul data-start=\"4310\" data-end=\"5232\"><li data-start=\"4310\" data-end=\"4539\"><p data-start=\"4312\" data-end=\"4338\">Materiales y proveedores:<\/p><ul data-start=\"4341\" data-end=\"4539\"><li data-start=\"4341\" data-end=\"4389\"><p data-start=\"4343\" data-end=\"4389\">Rogers: Serie RO3000, serie RT, serie TMM<img decoding=\"async\" class=\"alignnone size-full wp-image-2731\" src=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Rogers-RO3003.webp\" alt=\"Rogers RO3003\" width=\"600\" height=\"450\" srcset=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Rogers-RO3003.webp 600w, https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Rogers-RO3003-300x225.webp 300w\" sizes=\"(max-width: 600px) 100vw, 600px\" \/><\/p><\/li><li data-start=\"4392\" data-end=\"4439\"><p data-start=\"4394\" data-end=\"4439\">Arlon: Series AD\/AR, IsoClad, CuClad<\/p><\/li><li data-start=\"4442\" data-end=\"4488\"><p data-start=\"4444\" data-end=\"4488\">Taconic: Serie RF, serie TLX, serie TLY<\/p><\/li><li data-start=\"4491\" data-end=\"4539\"><p data-start=\"4493\" data-end=\"4539\">Microondas Taixing: F4B \/ F4BM \/ F4BK \/ TP-2B<\/p><\/li><\/ul><\/li><li data-start=\"4540\" data-end=\"5232\"><p data-start=\"4542\" data-end=\"4570\">Notas de procesamiento para PTFE:<\/p><ul data-start=\"4573\" data-end=\"5232\"><li data-start=\"4573\" data-end=\"4657\"><p data-start=\"4575\" data-end=\"4657\">Mantenga una pel\u00edcula protectora al cortar las hojas en bruto para evitar ara\u00f1azos y marcas de presi\u00f3n.<\/p><\/li><li data-start=\"4660\" data-end=\"4791\"><p data-start=\"4662\" data-end=\"4791\">Utilice brocas nuevas (se recomiendan las brocas est\u00e1ndar #130). Para obtener mejores resultados, taladre una hoja cada vez. Mantenga la presi\u00f3n de apriete a ~40 psi.<\/p><\/li><li data-start=\"4794\" data-end=\"4872\"><p data-start=\"4796\" data-end=\"4872\">Utilice un tope trasero de aluminio y almohadillas de melamina de 1 mm para sujetar el PTFE durante el taladrado.<\/p><\/li><li data-start=\"4875\" data-end=\"4931\"><p data-start=\"4877\" data-end=\"4931\">Despu\u00e9s de taladrar, elimine el polvo de los orificios con aire caliente.<\/p><\/li><li data-start=\"4934\" data-end=\"5044\"><p data-start=\"4936\" data-end=\"5044\">Utilice una taladradora estable. Para orificios peque\u00f1os, aumente la velocidad y reduzca la carga de viruta y la velocidad de retorno del husillo.<\/p><\/li><li data-start=\"5047\" data-end=\"5155\"><p data-start=\"5049\" data-end=\"5155\">Tratamiento de la superficie del orificio: el plasma a baja temperatura o la activaci\u00f3n con naftaleno s\u00f3dico ayudan a la metalizaci\u00f3n del orificio.<\/p><\/li><li data-start=\"5158\" data-end=\"5232\"><p data-start=\"5160\" data-end=\"5232\">Hay que prestar atenci\u00f3n a la deposici\u00f3n y adherencia del cobre PTH (chapado a trav\u00e9s de orificios).<\/p><\/li><\/ul><\/li><\/ul><p data-start=\"5234\" data-end=\"5264\"><strong data-start=\"5234\" data-end=\"5262\">3. Deposici\u00f3n de cobre PTH<\/strong><\/p><ul data-start=\"5265\" data-end=\"5384\"><li data-start=\"5265\" data-end=\"5384\"><p data-start=\"5267\" data-end=\"5384\">Despu\u00e9s del micrograbado (control de ~20 micropulgadas), realice el PTH. Si es necesario, realice una segunda pasada de PTH seg\u00fan lo requiera el trazado de la placa.<\/p><\/li><\/ul><p data-start=\"5386\" data-end=\"5427\"><strong data-start=\"5386\" data-end=\"5425\">4. Proceso de m\u00e1scara de soldadura (m\u00e1scara verde)<\/strong><\/p><ul data-start=\"5428\" data-end=\"5701\"><li data-start=\"5428\" data-end=\"5498\"><p data-start=\"5430\" data-end=\"5498\">Tratamiento previo: limpieza \u00e1cida\/alcalina; evitar el lijado mec\u00e1nico.<\/p><\/li><li data-start=\"5499\" data-end=\"5574\"><p data-start=\"5501\" data-end=\"5574\">Tras el preprocesado, hornear el cart\u00f3n (90\u00b0C durante 30 min) y aplicar pel\u00edcula seca.<\/p><\/li><li data-start=\"5575\" data-end=\"5701\"><p data-start=\"5577\" data-end=\"5701\">Hornear en tres fases: 80\u00b0C, 100\u00b0C, 150\u00b0C, 30 min cada una. Si la mascarilla muestra manchas de aceite, ret\u00edrela y repita el tratamiento de activaci\u00f3n.<\/p><\/li><\/ul><p data-start=\"5703\" data-end=\"5741\"><strong data-start=\"5703\" data-end=\"5739\">5. Fresado de placas de PTFE<\/strong><\/p><ul data-start=\"5742\" data-end=\"6038\"><li data-start=\"5742\" data-end=\"5835\"><p data-start=\"5744\" data-end=\"5835\">Utilice papel fino en el lado de la traza de PTFE y sujete con FR-4 o soporte fen\u00f3lico durante el trazado.<\/p><\/li><li data-start=\"5836\" data-end=\"6038\"><p data-start=\"5838\" data-end=\"6038\">Despu\u00e9s del fresado, acabe a mano las rebabas de los bordes e inspecci\u00f3nelas cuidadosamente. Evite da\u00f1ar el cobre y la superficie de la placa. Utilice papel de separaci\u00f3n sin azufre. Reduzca bien las rebabas. El paso de fresado debe dejar un buen acabado en los bordes.<\/p><\/li><\/ul><hr data-start=\"6040\" data-end=\"6043\" \/><h1 data-start=\"6045\" data-end=\"6093\">Flujo de producci\u00f3n de placas de PTFE de alta frecuencia<\/h1><p data-start=\"6095\" data-end=\"6167\">A continuaci\u00f3n se presentan tres flujos de procesos habituales. Los he puesto en una tabla para mayor claridad.<\/p><div class=\"_tableContainer_sk2ct_1\"><div class=\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\" tabindex=\"-1\"><table class=\"w-fit min-w-(--thread-content-width)\" data-start=\"6169\" data-end=\"6917\"><thead data-start=\"6169\" data-end=\"6207\"><tr data-start=\"6169\" data-end=\"6207\"><th data-start=\"6169\" data-end=\"6184\" data-col-size=\"sm\">Tipo de proceso<\/th><th data-start=\"6184\" data-end=\"6207\" data-col-size=\"xl\">Pasos clave (resumen)<\/th><\/tr><\/thead><tbody data-start=\"6218\" data-end=\"6917\"><tr data-start=\"6218\" data-end=\"6482\"><td data-start=\"6218\" data-end=\"6260\" data-col-size=\"sm\">NPTH (Agujero pasante no recubierto) para PTFE<\/td><td data-col-size=\"xl\" data-start=\"6260\" data-end=\"6482\">Corte \u2192 Taladrado \u2192 Pel\u00edcula seca \u2192 Inspecci\u00f3n \u2192 Grabado \u2192 Inspecci\u00f3n de grabado \u2192 M\u00e1scara de soldadura \u2192 Exposici\u00f3n de pel\u00edcula seca \u2192 Nivelaci\u00f3n de soldadura por aire caliente (HASL) o rociado de esta\u00f1o \u2192 Ruteado\/conformado \u2192 Inspecci\u00f3n \u2192 Inspecci\u00f3n final \u2192 Embalaje \u2192 Entrega.<\/td><\/tr><tr data-start=\"6483\" data-end=\"6822\"><td data-start=\"6483\" data-end=\"6520\" data-col-size=\"sm\">PTH (Plated Through Hole) para PTFE<\/td><td data-col-size=\"xl\" data-start=\"6520\" data-end=\"6822\">Corte \u2192 Taladrado \u2192 Tratamiento de orificios (plasma a baja temperatura o activaci\u00f3n con naftaleno s\u00f3dico) \u2192 Cobreado \u2192 Prueba el\u00e9ctrica de paneles \u2192 Pel\u00edcula seca \u2192 Inspecci\u00f3n \u2192 Captura de im\u00e1genes \u2192 Grabado \u2192 Inspecci\u00f3n de grabado \u2192 M\u00e1scara de soldadura \u2192 Exposici\u00f3n a pel\u00edcula seca \u2192 HASL \u2192 Ruteado\/conformado \u2192 Inspecci\u00f3n \u2192 Inspecci\u00f3n final \u2192 Embalaje \u2192 Entrega.<\/td><\/tr><tr data-start=\"6823\" data-end=\"6917\"><td data-start=\"6823\" data-end=\"6854\" data-col-size=\"sm\">Controles del proceso de m\u00e1scara de soldadura<\/td><td data-col-size=\"xl\" data-start=\"6854\" data-end=\"6917\">Controlar cuidadosamente la adherencia de la m\u00e1scara verde y la formaci\u00f3n de burbujas.<\/td><\/tr><\/tbody><\/table><\/div><\/div><p data-start=\"6919\" data-end=\"6999\">Nota: Cada paso del proceso debe controlar estrictamente los ara\u00f1azos superficiales y otros defectos.<\/p><hr data-start=\"7001\" data-end=\"7004\" \/><h1 data-start=\"7006\" data-end=\"7043\">Aplicaciones de las placas de circuito impreso de alta frecuencia<\/h1><p data-start=\"7045\" data-end=\"7084\">Los PCB de alta frecuencia suelen aparecer en:<\/p><ul data-start=\"7086\" data-end=\"7468\"><li data-start=\"7086\" data-end=\"7137\"><p data-start=\"7088\" data-end=\"7137\">Amplificadores de potencia y amplificadores de bajo ruido (LNA)<\/p><\/li><li data-start=\"7138\" data-end=\"7198\"><p data-start=\"7140\" data-end=\"7198\">Productos de comunicaci\u00f3n m\u00f3vil y sistemas de iluminaci\u00f3n inteligentes<\/p><\/li><li data-start=\"7199\" data-end=\"7273\"><p data-start=\"7201\" data-end=\"7273\">Divisores de potencia, acopladores, duplexores, filtros y otros dispositivos pasivos<\/p><\/li><li data-start=\"7274\" data-end=\"7366\"><p data-start=\"7276\" data-end=\"7366\">Sistemas anticolisi\u00f3n para autom\u00f3viles, sat\u00e9lites de comunicaciones, sistemas de telefon\u00eda inal\u00e1mbrica<\/p><\/li><li data-start=\"7367\" data-end=\"7468\"><p data-start=\"7369\" data-end=\"7468\">En resumen, la electr\u00f3nica se mueve hacia frecuencias m\u00e1s altas y las placas de alta frecuencia siguen esta tendencia.<\/p><\/li><\/ul><hr data-start=\"7470\" data-end=\"7473\" \/><h1 data-start=\"7475\" data-end=\"7510\">C\u00f3mo dise\u00f1ar placas de circuito impreso de alta frecuencia<\/h1><p data-start=\"7512\" data-end=\"7840\">En el dise\u00f1o de placas de circuito impreso de alta frecuencia, la disposici\u00f3n del plano de potencia es fundamental. Suele colocarse en su propia capa. Esto ayuda a que el circuito siga el camino de menor impedancia. El plano de potencia debe proporcionar v\u00edas de retorno para todas las se\u00f1ales de la placa de circuito impreso. As\u00ed se reduce el \u00e1rea de bucle y el ruido. Los dise\u00f1adores de baja frecuencia suelen ignorar algunos de estos problemas de ruido.<\/p><p data-start=\"7842\" data-end=\"7890\">Siga estas reglas en el dise\u00f1o de PCB de alta frecuencia:<\/p><ul data-start=\"7892\" data-end=\"8086\"><li data-start=\"7892\" data-end=\"7937\"><p data-start=\"7894\" data-end=\"7937\">Mantener el poder y el suelo estables y unificados.<\/p><\/li><li data-start=\"7938\" data-end=\"8001\"><p data-start=\"7940\" data-end=\"8001\">Un enrutamiento cuidadoso y una terminaci\u00f3n correcta eliminan las reflexiones.<\/p><\/li><li data-start=\"8002\" data-end=\"8086\"><p data-start=\"8004\" data-end=\"8086\">Un enrutamiento cuidadoso y una terminaci\u00f3n correcta reducen la capacitancia y la diafon\u00eda medida.<\/p><\/li><\/ul><p data-start=\"8088\" data-end=\"8124\">A continuaci\u00f3n ampl\u00edo varios temas clave.<\/p><h2 data-start=\"8126\" data-end=\"8156\">(1) Anchura de la l\u00ednea de transmisi\u00f3n<\/h2><p data-start=\"8158\" data-end=\"8249\">La anchura de la l\u00ednea de transmisi\u00f3n en el dise\u00f1o de PCB de alta frecuencia debe seguir la teor\u00eda de adaptaci\u00f3n de impedancias.<\/p><p data-start=\"8251\" data-end=\"8701\"><strong data-start=\"8251\" data-end=\"8273\">Adaptaci\u00f3n de impedancias<\/strong><br data-start=\"8273\" data-end=\"8276\" \/>Cuando la impedancia de entrada\/salida y la impedancia de la l\u00ednea de transmisi\u00f3n coinciden, el sistema proporciona la m\u00e1xima potencia de salida y la m\u00ednima reflexi\u00f3n. En los circuitos de microondas, la adaptaci\u00f3n tambi\u00e9n debe tener en cuenta los puntos de polarizaci\u00f3n de los dispositivos. Las v\u00edas en las l\u00edneas de se\u00f1al cambian las propiedades de transmisi\u00f3n. Para TTL y CMOS, la impedancia caracter\u00edstica es alta, por lo que el efecto es peque\u00f1o. Pero para las l\u00edneas de RF de baja impedancia de 50 \u03a9, deben tenerse en cuenta las v\u00edas. Por lo general, evite las v\u00edas en este tipo de l\u00edneas.<\/p><h2 data-start=\"8703\" data-end=\"8755\">(2) Diafon\u00eda entre l\u00edneas de transmisi\u00f3n paralelas<\/h2><p data-start=\"8757\" data-end=\"9122\">Cuando dos l\u00edneas microstrip discurren pr\u00f3ximas y paralelas, se produce acoplamiento. Provocan diafon\u00eda y cambian la impedancia caracter\u00edstica de la l\u00ednea. Preste atenci\u00f3n a los circuitos de 50 \u03a9 y 75 \u03a9. Los dise\u00f1adores pueden utilizar el acoplamiento para algunas funciones, como los acopladores direccionales o la medici\u00f3n de potencia. Valores de ejemplo de un dise\u00f1o (amplificador de estaci\u00f3n base de extremo PCS de 1,97 GHz, diel\u00e9ctrico \u03b5r = 3,48):<\/p><ul data-start=\"9124\" data-end=\"9266\"><li data-start=\"9124\" data-end=\"9195\"><p data-start=\"9126\" data-end=\"9195\">Para un acoplador direccional de 10 dB: S = 5 mil, l = 920 mil, W = 53 mil<\/p><\/li><li data-start=\"9196\" data-end=\"9266\"><p data-start=\"9198\" data-end=\"9266\">Para un acoplador direccional de 20 dB: S = 35 mil, l = 920 mil, W = 62 mil<\/p><\/li><\/ul><p data-start=\"9268\" data-end=\"9308\">Para reducir la diafon\u00eda, sigue estas reglas:<\/p><p data-start=\"9310\" data-end=\"9556\">A. Mantenga la separaci\u00f3n S entre l\u00edneas paralelas de alta frecuencia o alta velocidad al menos a un ancho de l\u00ednea.<br data-start=\"9404\" data-end=\"9407\" \/>B. Reduzca la longitud paralela siempre que sea posible.<br data-start=\"9450\" data-end=\"9453\" \/>C. Mantenga las peque\u00f1as se\u00f1ales de alta frecuencia alejadas de las l\u00edneas de alimentaci\u00f3n y l\u00f3gicas que pueden causar fuertes interferencias.<\/p><h2 data-start=\"9558\" data-end=\"9600\">(3) Suelo mediante an\u00e1lisis electromagn\u00e9tico<\/h2><p data-start=\"9602\" data-end=\"10021\">Para las patillas de tierra del circuito integrado u otras patillas de tierra, coloque v\u00edas de tierra cerca de las patillas en circuitos de alta frecuencia. La idea: una v\u00eda de tierra corta act\u00faa como una impedancia inductiva. La v\u00eda de tierra tambi\u00e9n parece inductiva. Esto afecta al funcionamiento del filtro. Por ello, coloque las v\u00edas de tierra cerca de las patillas. Para reducir la carga inductiva, utilice m\u00e1s v\u00edas de tierra que en las placas de baja frecuencia. Esto aumenta la capacidad de corriente a tierra y ayuda a mantener todos los puntos cerca de 0 V.<\/p><h2 data-start=\"10023\" data-end=\"10045\">(4) Filtrado de potencia<\/h2><p data-start=\"10047\" data-end=\"10529\">En TTL y CMOS, los dise\u00f1adores a\u00f1aden condensadores de derivaci\u00f3n cerca de los pines de alimentaci\u00f3n para reducir el ruido l\u00f3gico. En los circuitos de alta frecuencia y microondas, esto no es suficiente. Las se\u00f1ales de alta frecuencia producen interferencias de alta frecuencia en la alimentaci\u00f3n. Utilice inductores y condensadores en serie. Elija los inductores en funci\u00f3n de la frecuencia de trabajo. Ejemplo: para filtrar ruido &gt;1 MHz con C = 0,1 \u03bcF, elija L = 1 \u03bcH. Cuando a\u00f1ada inductancia en las patillas de se\u00f1al de circuito abierto del colector, tenga cuidado. La inductancia act\u00faa entonces como una inductancia de adaptaci\u00f3n.<\/p><h2 data-start=\"10531\" data-end=\"10547\">(5) Blindaje<\/h2><p data-start=\"10549\" data-end=\"10680\">Utilice apantallamiento para proteger las se\u00f1ales peque\u00f1as o de alta frecuencia. De este modo se reducen las interferencias de se\u00f1ales fuertes y se reduce la EMI. Algunas directrices:<\/p><p data-start=\"10682\" data-end=\"10902\">A. En los dise\u00f1os digitales\/anal\u00f3gicos de baja frecuencia (&lt;30 MHz) de peque\u00f1a se\u00f1al, divida las masas digitales y anal\u00f3gicas, y vierta el plano de tierra en las zonas de peque\u00f1a se\u00f1al. Mantenga una distancia entre la toma de tierra y las trazas mayor que la anchura de la traza.<\/p><p data-start=\"10904\" data-end=\"11021\">B. En el dise\u00f1o de se\u00f1ales peque\u00f1as digitales\/anal\u00f3gicas de alta frecuencia, a\u00f1ada latas de blindaje o v\u00edas de tierra cosidas para aislar las zonas.<\/p><p data-start=\"10904\" data-end=\"11021\"><img loading=\"lazy\" decoding=\"async\" class=\"alignnone size-full wp-image-2729\" src=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Isola-PCB.webp\" alt=\"Isola-PCB\" width=\"600\" height=\"449\" srcset=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Isola-PCB.webp 600w, https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Isola-PCB-300x225.webp 300w\" sizes=\"(max-width: 600px) 100vw, 600px\" \/><\/p><p data-start=\"11023\" data-end=\"11245\">C. Para circuitos de alta potencia y alta frecuencia, convierta la parte de alta frecuencia en un m\u00f3dulo funcional independiente y a\u00f1ada una caja met\u00e1lica de blindaje para reducir la radiaci\u00f3n. Por ejemplo, m\u00f3dulos transceptores de fibra \u00f3ptica a 155 M, 622 M o 2 Gb\/s.<\/p><p data-start=\"11247\" data-end=\"11435\">Una PCB multicapa para tel\u00e9fono m\u00f3vil (ejemplo: Nokia 6110) puede colocar componentes en ambas caras y utilizar tomas de tierra internas como se muestra en la figura original. (Aqu\u00ed se omiten las referencias a la figura).<\/p><hr data-start=\"11437\" data-end=\"11440\" \/><h1 data-start=\"11442\" data-end=\"11490\">Ejemplos de selecci\u00f3n de materiales para tableros altos<\/h1><p data-start=\"11492\" data-end=\"11548\">A continuaci\u00f3n se muestran ejemplos de placas que hemos dise\u00f1ado y depurado:<\/p><div class=\"_tableContainer_sk2ct_1\"><div class=\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\" tabindex=\"-1\"><table class=\"w-fit min-w-(--thread-content-width)\" data-start=\"11550\" data-end=\"12491\"><thead data-start=\"11550\" data-end=\"11608\"><tr data-start=\"11550\" data-end=\"11608\"><th data-start=\"11550\" data-end=\"11580\" data-col-size=\"sm\">Aplicaci\u00f3n (frecuencia \/ dispositivo)<\/th><th data-start=\"11580\" data-end=\"11599\" data-col-size=\"md\">Material \/ Pila<\/th><th data-start=\"11599\" data-end=\"11608\" data-col-size=\"md\">Notas<\/th><\/tr><\/thead><tbody data-start=\"11624\" data-end=\"12491\"><tr data-start=\"11624\" data-end=\"11797\"><td data-start=\"11624\" data-end=\"11656\" data-col-size=\"sm\">Rel\u00e9 de espectro ensanchado de 2,4 GHz<\/td><td data-col-size=\"md\" data-start=\"11656\" data-end=\"11700\">FR-4, placa de circuito impreso de 4 capas con grandes tomas de tierra<\/td><td data-col-size=\"md\" data-start=\"11700\" data-end=\"11797\">Separaci\u00f3n de la parte anal\u00f3gica de alta frecuencia. Las l\u00edneas el\u00e9ctricas utilizan inductores para aislar la parte digital.<\/td><\/tr><tr data-start=\"11798\" data-end=\"11939\"><td data-start=\"11798\" data-end=\"11823\" data-col-size=\"sm\">Transceptor RF de 2,4 GHz<\/td><td data-col-size=\"md\" data-start=\"11823\" data-end=\"11859\">Material PTFE, tablero de doble cara<\/td><td data-col-size=\"md\" data-start=\"11859\" data-end=\"11939\">Transmisi\u00f3n y recepci\u00f3n de RF en latas de blindaje met\u00e1lico separadas; entrada de alimentaci\u00f3n filtrada.<\/td><\/tr><tr data-start=\"11940\" data-end=\"12035\"><td data-start=\"11940\" data-end=\"11965\" data-col-size=\"sm\">Transceptor de RF de 1,9 GHz<\/td><td data-col-size=\"md\" data-start=\"11965\" data-end=\"11994\">Material PTFE, PCB de 4 capas<\/td><td data-col-size=\"md\" data-start=\"11994\" data-end=\"12035\">Utilizar grandes vertidos a tierra y blindaje.<\/td><\/tr><tr data-start=\"12036\" data-end=\"12123\"><td data-start=\"12036\" data-end=\"12061\" data-col-size=\"sm\">Transceptor de FI de 140 MHz<\/td><td data-col-size=\"md\" data-start=\"12061\" data-end=\"12086\">Capa superior S1139 0,3 mm<\/td><td data-col-size=\"md\" data-start=\"12086\" data-end=\"12123\">Gran vertido en el suelo; mediante aislamiento.<\/td><\/tr><tr data-start=\"12124\" data-end=\"12223\"><td data-start=\"12124\" data-end=\"12148\" data-col-size=\"sm\">Transceptor de FI de 70 MHz<\/td><td data-col-size=\"md\" data-start=\"12148\" data-end=\"12168\">FR-4, placa de circuito impreso de 4 capas<\/td><td data-col-size=\"md\" data-start=\"12168\" data-end=\"12223\">Gran vertido en el suelo; aislamiento del m\u00f3dulo mediante vallas.<\/td><\/tr><tr data-start=\"12224\" data-end=\"12385\"><td data-start=\"12224\" data-end=\"12247\" data-col-size=\"sm\">Amplificador de 30 W<\/td><td data-col-size=\"md\" data-start=\"12247\" data-end=\"12283\">Material RO4350, PCB de doble cara<\/td><td data-col-size=\"md\" data-start=\"12283\" data-end=\"12385\">Gran vertido a tierra; espaciado controlado a &gt;= 50 \u03a9 de ancho de l\u00ednea; caja de apantallamiento y filtrado de entrada de potencia.<\/td><\/tr><tr data-start=\"12386\" data-end=\"12491\"><td data-start=\"12386\" data-end=\"12414\" data-col-size=\"sm\">Fuente de microondas de 2000 MHz<\/td><td data-col-size=\"md\" data-start=\"12414\" data-end=\"12433\">S1139 0,8 mm superior<\/td><td data-col-size=\"md\" data-start=\"12433\" data-end=\"12491\">Placa de circuito impreso de doble cara; control preciso de las dimensiones de las trazas.<\/td><\/tr><\/tbody><\/table><\/div><\/div><p data-start=\"12493\" data-end=\"12573\">Util\u00edcelos como ejemplo. Cada proyecto necesita su propia elecci\u00f3n de material y grosor.<\/p><hr data-start=\"12575\" data-end=\"12578\" \/><h1 data-start=\"12580\" data-end=\"12622\">Requisitos de los materiales para placas de circuito impreso de alta frecuencia<\/h1><p data-start=\"12624\" data-end=\"12677\">Los dise\u00f1adores deben comprobar estas propiedades clave de los materiales:<\/p><ol data-start=\"12679\" data-end=\"13167\"><li data-start=\"12679\" data-end=\"12784\"><p data-start=\"12682\" data-end=\"12784\"><strong data-start=\"12682\" data-end=\"12720\">P\u00e9rdida diel\u00e9ctrica (Df, tangente de p\u00e9rdida)<\/strong> debe ser muy peque\u00f1a. Una p\u00e9rdida peque\u00f1a significa menos atenuaci\u00f3n de la se\u00f1al.<\/p><\/li><li data-start=\"12785\" data-end=\"12884\"><p data-start=\"12788\" data-end=\"12884\"><strong data-start=\"12788\" data-end=\"12812\">Baja absorci\u00f3n de agua<\/strong> es importante. Una elevada absorci\u00f3n de agua modifica la constante diel\u00e9ctrica y las p\u00e9rdidas.<\/p><\/li><li data-start=\"12885\" data-end=\"13021\"><p data-start=\"12888\" data-end=\"13021\"><strong data-start=\"12888\" data-end=\"12916\">Constante diel\u00e9ctrica (DK)<\/strong> debe ser bajo y estable. Un DK bajo proporciona una mayor velocidad de se\u00f1al. La estabilidad del DK tambi\u00e9n ayuda al control de la impedancia.<\/p><\/li><li data-start=\"13022\" data-end=\"13167\"><p data-start=\"13025\" data-end=\"13167\"><strong data-start=\"13025\" data-end=\"13050\">CTE y coincidencia t\u00e9rmica<\/strong> entre la l\u00e1mina de cobre y la base debe ser similar. Un gran desajuste con los cambios de temperatura puede provocar la delaminaci\u00f3n del cobre.<\/p><\/li><\/ol><p data-start=\"13169\" data-end=\"13256\">La alta frecuencia suele implicar el uso de sustratos de fluoropol\u00edmeros como el PTFE (conocido como tefl\u00f3n).<\/p><hr data-start=\"13258\" data-end=\"13261\" \/><h1 data-start=\"13263\" data-end=\"13321\">Notas y precauciones de fabricaci\u00f3n para placas de circuito impreso de alta frecuencia<\/h1><ol data-start=\"13323\" data-end=\"13843\"><li data-start=\"13323\" data-end=\"13424\"><p data-start=\"13326\" data-end=\"13424\"><strong data-start=\"13326\" data-end=\"13358\">El control de la impedancia es estricto.<\/strong> La tolerancia de anchura de l\u00ednea es ajustada. Tolerancia de control t\u00edpica ~ \u00b12%.<\/p><\/li><li data-start=\"13425\" data-end=\"13580\"><p data-start=\"13428\" data-end=\"13580\"><strong data-start=\"13428\" data-end=\"13473\">La adherencia de la PTH es baja en materiales especiales.<\/strong> Utilice el desbaste por plasma para agujeros y superficies con el fin de aumentar la adherencia para el metalizado y la resistencia a la soldadura.<\/p><\/li><li data-start=\"13581\" data-end=\"13711\"><p data-start=\"13584\" data-end=\"13711\"><strong data-start=\"13584\" data-end=\"13627\">No lije la placa antes de soldarla.<\/strong> Esto reduce la adherencia. Utilice \u00fanicamente soluciones de micrograbado u otros m\u00e9todos de desbaste.<\/p><\/li><li data-start=\"13712\" data-end=\"13843\"><p data-start=\"13715\" data-end=\"13843\"><strong data-start=\"13715\" data-end=\"13783\">Las placas de PTFE suelen presentar bordes \u00e1speros con las herramientas de fresado habituales.<\/strong> Utilice fresas especiales y siga las pr\u00e1cticas de fresado de PTFE.<\/p><\/li><\/ol><hr data-start=\"13845\" data-end=\"13848\" \/><h1 data-start=\"13850\" data-end=\"13868\">Breve conclusi\u00f3n<\/h1><p data-start=\"13870\" data-end=\"14235\">Las placas de circuito impreso de alta frecuencia necesitan materiales especiales y un cuidadoso control del proceso. Elija un material que se adapte a sus necesidades t\u00e9rmicas y de frecuencia. Controle la impedancia y coloque bien las v\u00edas de tierra. Utilice apantallamiento y un filtrado de potencia correcto. Siga los pasos de manipulaci\u00f3n especiales para PTFE y otros laminados de microondas. Estos pasos mejoran el rendimiento en circuitos de alta frecuencia.<\/p>\t\t\t\t\t\t\t\t<\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t<\/div>\n\t\t\t\t<\/div>\n\t\t\t\t<section class=\"elementor-section elementor-top-section elementor-element elementor-element-brlk2x4 elementor-section-content-top elementor-section-boxed elementor-section-height-default elementor-section-height-default\" data-id=\"brlk2x4\" data-element_type=\"section\" data-settings=\"{&quot;background_background&quot;:&quot;classic&quot;}\">\n\t\t\t\t\t\t\t<div class=\"elementor-background-overlay\"><\/div>\n\t\t\t\t\t\t\t<div class=\"elementor-container elementor-column-gap-no\">\n\t\t\t\t\t<div class=\"elementor-column elementor-col-100 elementor-top-column elementor-element elementor-element-7882748\" data-id=\"7882748\" data-element_type=\"column\">\n\t\t\t<div class=\"elementor-widget-wrap elementor-element-populated\">\n\t\t\t\t\t\t<div class=\"elementor-element elementor-element-9fc6712 elementor-widget elementor-widget-heading\" data-id=\"9fc6712\" data-element_type=\"widget\" data-widget_type=\"heading.default\">\n\t\t\t\t<div class=\"elementor-widget-container\">\n\t\t\t\t\t<h2 class=\"elementor-heading-title elementor-size-default\">Preguntas frecuentes<\/h2>\t\t\t\t<\/div>\n\t\t\t\t<\/div>\n\t\t\t\t<div class=\"elementor-element elementor-element-631b990 elementor-widget elementor-widget-accordion\" data-id=\"631b990\" data-element_type=\"widget\" data-widget_type=\"accordion.default\">\n\t\t\t\t<div class=\"elementor-widget-container\">\n\t\t\t\t\t\t\t<div class=\"elementor-accordion\">\n\t\t\t\t\t\t\t<div class=\"elementor-accordion-item\">\n\t\t\t\t\t<div id=\"elementor-tab-title-1031\" class=\"elementor-tab-title\" data-tab=\"1\" role=\"button\" aria-controls=\"elementor-tab-content-1031\" aria-expanded=\"false\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon elementor-accordion-icon-right\" aria-hidden=\"true\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-closed\"><svg class=\"e-font-icon-svg e-fas-plus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-opened\"><svg class=\"e-font-icon-svg e-fas-minus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t<a class=\"elementor-accordion-title\" tabindex=\"0\">\u00bfQu\u00e9 materiales de sustrato se utilizan habitualmente para las placas de circuito impreso de alta frecuencia?<\/a>\n\t\t\t\t\t<\/div>\n\t\t\t\t\t<div id=\"elementor-tab-content-1031\" class=\"elementor-tab-content elementor-clearfix\" data-tab=\"1\" role=\"region\" aria-labelledby=\"elementor-tab-title-1031\"><p>Los materiales t\u00edpicos son los laminados a base de PTFE (tefl\u00f3n) y los compuestos de ingenier\u00eda de proveedores como Rogers (RO3000\/RO4000\/RT\/duroid) e Isola, elegidos por su baja tangente de p\u00e9rdida y su constante diel\u00e9ctrica estable.<\/p><\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t\t\t<div class=\"elementor-accordion-item\">\n\t\t\t\t\t<div id=\"elementor-tab-title-1032\" class=\"elementor-tab-title\" data-tab=\"2\" role=\"button\" aria-controls=\"elementor-tab-content-1032\" aria-expanded=\"false\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon elementor-accordion-icon-right\" aria-hidden=\"true\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-closed\"><svg class=\"e-font-icon-svg e-fas-plus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-opened\"><svg class=\"e-font-icon-svg e-fas-minus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t<a class=\"elementor-accordion-title\" tabindex=\"0\">\u00bfPor qu\u00e9 no utilizar FR-4 para los dise\u00f1os de RF\/alta frecuencia?<\/a>\n\t\t\t\t\t<\/div>\n\t\t\t\t\t<div id=\"elementor-tab-content-1032\" class=\"elementor-tab-content elementor-clearfix\" data-tab=\"2\" role=\"region\" aria-labelledby=\"elementor-tab-title-1032\"><p>El FR-4 tiene una mayor p\u00e9rdida diel\u00e9ctrica y una constante diel\u00e9ctrica menos estable a frecuencias de GHz, lo que aumenta la p\u00e9rdida de se\u00f1al y la variabilidad de la impedancia; para muchas aplicaciones de RF o microondas, los laminados de PTFE\/clase Rogers tienen un rendimiento mucho mejor.<\/p><\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t\t\t<div class=\"elementor-accordion-item\">\n\t\t\t\t\t<div id=\"elementor-tab-title-1033\" class=\"elementor-tab-title\" data-tab=\"3\" role=\"button\" aria-controls=\"elementor-tab-content-1033\" aria-expanded=\"false\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon elementor-accordion-icon-right\" aria-hidden=\"true\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-closed\"><svg class=\"e-font-icon-svg e-fas-plus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-opened\"><svg class=\"e-font-icon-svg e-fas-minus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t<a class=\"elementor-accordion-title\" tabindex=\"0\">\u00bfQu\u00e9 propiedades el\u00e9ctricas son m\u00e1s importantes (Dk, tangente de p\u00e9rdida)?<\/a>\n\t\t\t\t\t<\/div>\n\t\t\t\t\t<div id=\"elementor-tab-content-1033\" class=\"elementor-tab-content elementor-clearfix\" data-tab=\"3\" role=\"region\" aria-labelledby=\"elementor-tab-title-1033\"><p>La constante diel\u00e9ctrica (Dk) controla la impedancia y la velocidad de la se\u00f1al; la tangente de p\u00e9rdida (Df) rige la atenuaci\u00f3n de la se\u00f1al. Una constante diel\u00e9ctrica (Dk) baja y estable y una tangente de p\u00e9rdida baja son esenciales para un rendimiento constante a alta frecuencia.<\/p><\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t\t\t<div class=\"elementor-accordion-item\">\n\t\t\t\t\t<div id=\"elementor-tab-title-1034\" class=\"elementor-tab-title\" data-tab=\"4\" role=\"button\" aria-controls=\"elementor-tab-content-1034\" aria-expanded=\"false\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon elementor-accordion-icon-right\" aria-hidden=\"true\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-closed\"><svg class=\"e-font-icon-svg e-fas-plus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-opened\"><svg class=\"e-font-icon-svg e-fas-minus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t<a class=\"elementor-accordion-title\" tabindex=\"0\">\u00bfAplicaciones t\u00edpicas de las placas de circuito impreso de alta frecuencia?<\/a>\n\t\t\t\t\t<\/div>\n\t\t\t\t\t<div id=\"elementor-tab-content-1034\" class=\"elementor-tab-content elementor-clearfix\" data-tab=\"4\" role=\"region\" aria-labelledby=\"elementor-tab-title-1034\"><p>Antenas, amplificadores de RF, filtros, estaciones base 5G, radioenlaces de microondas, comunicaciones por sat\u00e9lite, radares y m\u00f3dulos de RF de alta velocidad.<\/p><\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t\t\t<div class=\"elementor-accordion-item\">\n\t\t\t\t\t<div id=\"elementor-tab-title-1035\" class=\"elementor-tab-title\" data-tab=\"5\" role=\"button\" aria-controls=\"elementor-tab-content-1035\" aria-expanded=\"false\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon elementor-accordion-icon-right\" aria-hidden=\"true\">\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-closed\"><svg class=\"e-font-icon-svg e-fas-plus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t<span class=\"elementor-accordion-icon-opened\"><svg class=\"e-font-icon-svg e-fas-minus-circle\" viewbox=\"0 0 512 512\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\"><path d=\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\"><\/path><\/svg><\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t\t\t\t\t<a class=\"elementor-accordion-title\" tabindex=\"0\">\u00bfC\u00f3mo elegir el laminado de alta frecuencia adecuado?<\/a>\n\t\t\t\t\t<\/div>\n\t\t\t\t\t<div id=\"elementor-tab-content-1035\" class=\"elementor-tab-content elementor-clearfix\" data-tab=\"5\" role=\"region\" aria-labelledby=\"elementor-tab-title-1035\"><p>Establezca una correspondencia entre la gama de frecuencias requerida, la estabilidad de impedancia deseada, las necesidades t\u00e9rmicas\/CTE y la tangente de p\u00e9rdida. Revise las hojas de datos de los proveedores (Rogers, Isola, etc.) y solicite datos de pruebas de materiales (Dk\/Df frente a frecuencia).<\/p><\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t\t\t\t<\/div>\n\t\t\t\t\t\t<\/div>\n\t\t\t\t<\/div>\n\t\t\t\t\t<\/div>\n\t\t<\/div>\n\t\t\t\t\t<\/div>\n\t\t<\/section>\n\t\t\t\t<\/div>","protected":false},"excerpt":{"rendered":"<p>What Is a High-Frequency PCB A high-frequency PCB is a special printed circuit board (PCB) used for high electromagnetic frequency [&hellip;]<\/p>","protected":false},"author":1,"featured_media":0,"parent":1898,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_uag_custom_page_level_css":"","site-sidebar-layout":"no-sidebar","site-content-layout":"","ast-site-content-layout":"full-width-container","site-content-style":"default","site-sidebar-style":"default","ast-global-header-display":"","ast-banner-title-visibility":"","ast-main-header-display":"","ast-hfb-above-header-display":"","ast-hfb-below-header-display":"","ast-hfb-mobile-header-display":"","site-post-title":"disabled","ast-breadcrumbs-content":"","ast-featured-img":"disabled","footer-sml-layout":"","theme-transparent-header-meta":"","adv-header-id-meta":"","stick-header-meta":"","header-above-stick-meta":"","header-main-stick-meta":"","header-below-stick-meta":"","astra-migrate-meta-layouts":"default","ast-page-background-enabled":"default","ast-page-background-meta":{"desktop":{"background-color":"var(--ast-global-color-5)","background-image":"","background-repeat":"repeat","background-position":"center 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center\";s:15:\"background-size\";s:4:\"auto\";s:21:\"background-attachment\";s:6:\"scroll\";s:15:\"background-type\";s:0:\"\";s:16:\"background-media\";s:0:\"\";s:12:\"overlay-type\";s:0:\"\";s:13:\"overlay-color\";s:0:\"\";s:15:\"overlay-opacity\";s:0:\"\";s:16:\"overlay-gradient\";s:0:\"\";}}"],"footnotes":[""],"_elementor_edit_mode":["builder"],"_elementor_template_type":["wp-page"],"_elementor_data":["[{\"id\":\"2fe9c4e\",\"elType\":\"container\",\"settings\":{\"flex_direction\":\"column\",\"display_condition_list\":[{\"display_condition_login_status\":\"subscriber\",\"_id\":\"05b937f\"}]},\"elements\":[{\"id\":\"f058cdb\",\"elType\":\"widget\",\"settings\":{\"editor\":\"<h2 data-start=\\\"315\\\" data-end=\\\"345\\\">What Is a High-Frequency PCB<\\\/h2><p data-start=\\\"347\\\" data-end=\\\"753\\\">A<a href=\\\"https:\\\/\\\/en.wikipedia.org\\\/wiki\\\/Printed_circuit_board#High_frequency_PCBs\\\"> high-frequency PCB<\\\/a> is a special printed circuit board (PCB) used for high electromagnetic frequency signals. These boards are for radio frequencies above about 300 MHz (wavelength &lt; 1 m) and for microwave frequencies above about 3 GHz (wavelength &lt; 0.1 m). They are made on microwave base copper clad laminates. Production may use some standard rigid PCB steps or use special methods for these materials.<\\\/p><p data-start=\\\"347\\\" data-end=\\\"753\\\"><img class=\\\"alignnone size-full wp-image-2728\\\" src=\\\"https:\\\/\\\/flj-pcb.com\\\/wp-content\\\/uploads\\\/2025\\\/09\\\/High-Frequency-PCB.webp\\\" alt=\\\"High-Frequency PCB\\\" width=\\\"600\\\" height=\\\"372\\\" \\\/><\\\/p><p data-start=\\\"755\\\" data-end=\\\"1165\\\">With fast progress in technology, more devices work in the microwave band (&gt;1 GHz) and even in millimeter wave ranges (&gt;30 GHz). This means frequencies rise and material needs increase. Base materials must have very good electrical properties and good chemical stability. As the signal frequency goes up, material loss must stay very low. With the arrival of 5G, high-frequency materials became more important.<\\\/p><hr data-start=\\\"1167\\\" data-end=\\\"1170\\\" \\\/><h1 data-start=\\\"1172\\\" data-end=\\\"1207\\\">Advantages of High-Frequency PCBs<\\\/h1><p data-start=\\\"1209\\\" data-end=\\\"1430\\\"><strong data-start=\\\"1209\\\" data-end=\\\"1231\\\">1. High efficiency<\\\/strong><br data-start=\\\"1231\\\" data-end=\\\"1234\\\" \\\/>Materials with low dielectric constant cause low loss. Modern induction heating and other methods can hit targets and keep high efficiency. These boards also help reduce waste and fit green goals.<\\\/p><p data-start=\\\"1432\\\" data-end=\\\"1677\\\"><strong data-start=\\\"1432\\\" data-end=\\\"1449\\\">2. High speed<\\\/strong><br data-start=\\\"1449\\\" data-end=\\\"1452\\\" \\\/>Signal speed is inversely proportional to the square root of the dielectric constant. Lower dielectric constant means faster transmission. Special materials keep dielectric constant low and stable. This helps signal transfer.<\\\/p><p data-start=\\\"1679\\\" data-end=\\\"1970\\\"><strong data-start=\\\"1679\\\" data-end=\\\"1723\\\">3. Good control of heating or processing<\\\/strong><br data-start=\\\"1723\\\" data-end=\\\"1726\\\" \\\/>High-frequency boards are used in many fields that need precise heating of metal parts. You can control how deep or where to heat. You can focus on surface or deep heating. You can heat in a focused or spread way. The board allows fine control.<\\\/p><p data-start=\\\"1972\\\" data-end=\\\"2316\\\"><strong data-start=\\\"1972\\\" data-end=\\\"1996\\\">4. Strong durability<\\\/strong><br data-start=\\\"1996\\\" data-end=\\\"1999\\\" \\\/>Dielectric constant and dielectric material depend on environment. In humid areas, moisture hurts boards. High-frequency boards made from low water absorption material resist this. They resist chemical corrosion, moisture, high heat, and have high peel strength. These qualities make them strong in hard environments.<\\\/p><hr data-start=\\\"2318\\\" data-end=\\\"2321\\\" \\\/><h1 data-start=\\\"2323\\\" data-end=\\\"2375\\\">Common High-Frequency and High-Speed PCB Materials<\\\/h1><div class=\\\"_tableContainer_sk2ct_1\\\"><div class=\\\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\\\" tabindex=\\\"-1\\\"><table class=\\\"w-fit min-w-(--thread-content-width)\\\" data-start=\\\"2377\\\" data-end=\\\"2727\\\"><thead data-start=\\\"2377\\\" data-end=\\\"2419\\\"><tr data-start=\\\"2377\\\" data-end=\\\"2419\\\"><th data-start=\\\"2377\\\" data-end=\\\"2393\\\" data-col-size=\\\"sm\\\">Brand \\\/ Maker<\\\/th><th data-start=\\\"2393\\\" data-end=\\\"2419\\\" data-col-size=\\\"md\\\">Typical Series \\\/ Types<\\\/th><\\\/tr><\\\/thead><tbody data-start=\\\"2430\\\" data-end=\\\"2727\\\"><tr data-start=\\\"2430\\\" data-end=\\\"2473\\\"><td data-start=\\\"2430\\\" data-end=\\\"2439\\\" data-col-size=\\\"sm\\\">Rogers<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"2439\\\" data-end=\\\"2473\\\">RO4003, RO3003, RO4350, RO5880<\\\/td><\\\/tr><tr data-start=\\\"2474\\\" data-end=\\\"2537\\\"><td data-start=\\\"2474\\\" data-end=\\\"2509\\\" data-col-size=\\\"sm\\\">TUC (Taiyao \\\/ TaYa or TUC brand)<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"2509\\\" data-end=\\\"2537\\\">TUC862, 872SLK, 883, 933<\\\/td><\\\/tr><tr data-start=\\\"2538\\\" data-end=\\\"2574\\\"><td data-start=\\\"2538\\\" data-end=\\\"2550\\\" data-col-size=\\\"sm\\\">Panasonic<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"2550\\\" data-end=\\\"2574\\\">Megtron 4, Megtron 6<\\\/td><\\\/tr><tr data-start=\\\"2575\\\" data-end=\\\"2608\\\"><td data-start=\\\"2575\\\" data-end=\\\"2583\\\" data-col-size=\\\"sm\\\">Isola<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"2583\\\" data-end=\\\"2608\\\">FR408HR, IS620, IS680<\\\/td><\\\/tr><tr data-start=\\\"2609\\\" data-end=\\\"2643\\\"><td data-start=\\\"2609\\\" data-end=\\\"2617\\\" data-col-size=\\\"sm\\\">Nelco<\\\/td><td data-start=\\\"2617\\\" data-end=\\\"2643\\\" data-col-size=\\\"md\\\">N4000-13, N4000-13EPSI<\\\/td><\\\/tr><tr data-start=\\\"2644\\\" data-end=\\\"2727\\\"><td data-start=\\\"2644\\\" data-end=\\\"2670\\\" data-col-size=\\\"sm\\\">Domestic makers (China)<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"2670\\\" data-end=\\\"2727\\\">Dongguan Shengyi, Taizhou Wangling, Taixing Microwave<\\\/td><\\\/tr><\\\/tbody><\\\/table><\\\/div><\\\/div><p data-start=\\\"2729\\\" data-end=\\\"2849\\\">(Use these example materials as a starting point. Each design needs the right material choice for frequency and layout.)<\\\/p><hr data-start=\\\"2851\\\" data-end=\\\"2854\\\" \\\/><h1 data-start=\\\"2856\\\" data-end=\\\"2913\\\">Difference Between High-Frequency Boards and HDI Boards<\\\/h1><p data-start=\\\"2915\\\" data-end=\\\"3218\\\">High-frequency PCBs are for radar, test instruments, automotive collision-avoidance systems, communication satellites, wireless systems, and other fields. HDI (High Density Interconnect) boards are for small devices with many components. HDI often uses double-sided boards in products with small volume.<\\\/p><p data-start=\\\"3220\\\" data-end=\\\"3555\\\">A high-frequency board needs very high process control and precision. Many times designers start from FR-4 glass epoxy, but true high-frequency boards use special laminates. The board must have a small and stable dielectric constant, low dielectric loss, low water absorption, high temperature tolerance, and good corrosion resistance.<\\\/p><p data-start=\\\"3557\\\" data-end=\\\"3824\\\">An HDI board uses micro blind vias to reach high routing density. It has internal and external routing that connect by drilling and plating. HDI is for compact products. Some HDI designs use modular parallel modules and strong DSP control for power and load features.<\\\/p><hr data-start=\\\"3826\\\" data-end=\\\"3829\\\" \\\/><h1 data-start=\\\"3831\\\" data-end=\\\"3880\\\">Types \\\/ Classification of High-Frequency Boards<\\\/h1><p data-start=\\\"3882\\\" data-end=\\\"3938\\\">Below are common types and notes about their processing:<\\\/p><p data-start=\\\"3940\\\" data-end=\\\"3989\\\"><strong data-start=\\\"3940\\\" data-end=\\\"3987\\\">1. Powder-filled thermoset (ceramic filled)<\\\/strong><\\\/p><ul data-start=\\\"3990\\\" data-end=\\\"4260\\\"><li data-start=\\\"3990\\\" data-end=\\\"4078\\\"><p data-start=\\\"3992\\\" data-end=\\\"4078\\\">Materials and suppliers: Rogers 4350B \\\/ 4003C; Arlon 25N \\\/ 25FR; Taconic TLG series.<img class=\\\"size-full wp-image-2730 aligncenter\\\" src=\\\"https:\\\/\\\/flj-pcb.com\\\/wp-content\\\/uploads\\\/2025\\\/09\\\/Rogers-4350b.webp\\\" alt=\\\"Rogers 4350b\\\" width=\\\"600\\\" height=\\\"308\\\" \\\/><\\\/p><\\\/li><li data-start=\\\"4079\\\" data-end=\\\"4260\\\"><p data-start=\\\"4081\\\" data-end=\\\"4260\\\">Processing: Steps are similar to FR-4 epoxy glass laminates. However, boards are brittle and easy to break. Tool life for drills and router bits drops about 20%. Handle with care.<\\\/p><\\\/li><\\\/ul><p data-start=\\\"4262\\\" data-end=\\\"4309\\\"><strong data-start=\\\"4262\\\" data-end=\\\"4307\\\">2. PTFE (polytetrafluoroethylene, Teflon)<\\\/strong><\\\/p><ul data-start=\\\"4310\\\" data-end=\\\"5232\\\"><li data-start=\\\"4310\\\" data-end=\\\"4539\\\"><p data-start=\\\"4312\\\" data-end=\\\"4338\\\">Materials and suppliers:<\\\/p><ul data-start=\\\"4341\\\" data-end=\\\"4539\\\"><li data-start=\\\"4341\\\" data-end=\\\"4389\\\"><p data-start=\\\"4343\\\" data-end=\\\"4389\\\">Rogers: RO3000 series, RT series, TMM series<img class=\\\"alignnone size-full wp-image-2731\\\" src=\\\"https:\\\/\\\/flj-pcb.com\\\/wp-content\\\/uploads\\\/2025\\\/09\\\/Rogers-RO3003.webp\\\" alt=\\\"Rogers RO3003\\\" width=\\\"600\\\" height=\\\"450\\\" \\\/><\\\/p><\\\/li><li data-start=\\\"4392\\\" data-end=\\\"4439\\\"><p data-start=\\\"4394\\\" data-end=\\\"4439\\\">Arlon: AD\\\/AR series, IsoClad, CuClad series<\\\/p><\\\/li><li data-start=\\\"4442\\\" data-end=\\\"4488\\\"><p data-start=\\\"4444\\\" data-end=\\\"4488\\\">Taconic: RF series, TLX series, TLY series<\\\/p><\\\/li><li data-start=\\\"4491\\\" data-end=\\\"4539\\\"><p data-start=\\\"4493\\\" data-end=\\\"4539\\\">Taixing Microwave: F4B \\\/ F4BM \\\/ F4BK \\\/ TP-2B<\\\/p><\\\/li><\\\/ul><\\\/li><li data-start=\\\"4540\\\" data-end=\\\"5232\\\"><p data-start=\\\"4542\\\" data-end=\\\"4570\\\">Processing notes for PTFE:<\\\/p><ul data-start=\\\"4573\\\" data-end=\\\"5232\\\"><li data-start=\\\"4573\\\" data-end=\\\"4657\\\"><p data-start=\\\"4575\\\" data-end=\\\"4657\\\">Keep protective film when cutting raw sheets to avoid scratches and press marks.<\\\/p><\\\/li><li data-start=\\\"4660\\\" data-end=\\\"4791\\\"><p data-start=\\\"4662\\\" data-end=\\\"4791\\\">Use new drills (standard #130 drills recommended). For best results, drill one sheet at a time. Keep clamp pressure at ~40 psi.<\\\/p><\\\/li><li data-start=\\\"4794\\\" data-end=\\\"4872\\\"><p data-start=\\\"4796\\\" data-end=\\\"4872\\\">Use aluminum backstop and 1 mm melamine pads to hold PTFE during drilling.<\\\/p><\\\/li><li data-start=\\\"4875\\\" data-end=\\\"4931\\\"><p data-start=\\\"4877\\\" data-end=\\\"4931\\\">After drilling, blow dust out of holes with hot air.<\\\/p><\\\/li><li data-start=\\\"4934\\\" data-end=\\\"5044\\\"><p data-start=\\\"4936\\\" data-end=\\\"5044\\\">Use a stable drill machine. For small holes, increase speed and reduce chip load and spindle return speed.<\\\/p><\\\/li><li data-start=\\\"5047\\\" data-end=\\\"5155\\\"><p data-start=\\\"5049\\\" data-end=\\\"5155\\\">Hole surface treatment: low-temperature plasma or sodium naphthalene activation help hole metallization.<\\\/p><\\\/li><li data-start=\\\"5158\\\" data-end=\\\"5232\\\"><p data-start=\\\"5160\\\" data-end=\\\"5232\\\">PTH (plated through hole) copper deposition and adhesion need attention.<\\\/p><\\\/li><\\\/ul><\\\/li><\\\/ul><p data-start=\\\"5234\\\" data-end=\\\"5264\\\"><strong data-start=\\\"5234\\\" data-end=\\\"5262\\\">3. PTH copper deposition<\\\/strong><\\\/p><ul data-start=\\\"5265\\\" data-end=\\\"5384\\\"><li data-start=\\\"5265\\\" data-end=\\\"5384\\\"><p data-start=\\\"5267\\\" data-end=\\\"5384\\\">After micro-etch (~20 microinch control), perform PTH. If needed, run a second PTH pass as required by board routing.<\\\/p><\\\/li><\\\/ul><p data-start=\\\"5386\\\" data-end=\\\"5427\\\"><strong data-start=\\\"5386\\\" data-end=\\\"5425\\\">4. Solder mask (green mask) process<\\\/strong><\\\/p><ul data-start=\\\"5428\\\" data-end=\\\"5701\\\"><li data-start=\\\"5428\\\" data-end=\\\"5498\\\"><p data-start=\\\"5430\\\" data-end=\\\"5498\\\">Pre-process: use acid\\\/alkaline cleaning; avoid mechanical sanding.<\\\/p><\\\/li><li data-start=\\\"5499\\\" data-end=\\\"5574\\\"><p data-start=\\\"5501\\\" data-end=\\\"5574\\\">After pre-process, bake the board (90\\u00b0C for 30 min) and apply dry film.<\\\/p><\\\/li><li data-start=\\\"5575\\\" data-end=\\\"5701\\\"><p data-start=\\\"5577\\\" data-end=\\\"5701\\\">Bake in three stages: 80\\u00b0C, 100\\u00b0C, 150\\u00b0C, 30 min each. If mask shows oil spots, remove mask and repeat activation treatment.<\\\/p><\\\/li><\\\/ul><p data-start=\\\"5703\\\" data-end=\\\"5741\\\"><strong data-start=\\\"5703\\\" data-end=\\\"5739\\\">5. Routing \\\/ milling PTFE boards<\\\/strong><\\\/p><ul data-start=\\\"5742\\\" data-end=\\\"6038\\\"><li data-start=\\\"5742\\\" data-end=\\\"5835\\\"><p data-start=\\\"5744\\\" data-end=\\\"5835\\\">Use thin paper on PTFE trace side and clamp with FR-4 or phenolic backing during routing.<\\\/p><\\\/li><li data-start=\\\"5836\\\" data-end=\\\"6038\\\"><p data-start=\\\"5838\\\" data-end=\\\"6038\\\">After routing, hand-finish edge burrs and inspect carefully. Avoid damaging copper and board surface. Use sulfur-free separation paper. Reduce burrs well. The routing step must leave good edge finish.<\\\/p><\\\/li><\\\/ul><hr data-start=\\\"6040\\\" data-end=\\\"6043\\\" \\\/><h1 data-start=\\\"6045\\\" data-end=\\\"6093\\\">Production Flow for High-Frequency PTFE Boards<\\\/h1><p data-start=\\\"6095\\\" data-end=\\\"6167\\\">Below are three common process flows. I put them in a table for clarity.<\\\/p><div class=\\\"_tableContainer_sk2ct_1\\\"><div class=\\\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\\\" tabindex=\\\"-1\\\"><table class=\\\"w-fit min-w-(--thread-content-width)\\\" data-start=\\\"6169\\\" data-end=\\\"6917\\\"><thead data-start=\\\"6169\\\" data-end=\\\"6207\\\"><tr data-start=\\\"6169\\\" data-end=\\\"6207\\\"><th data-start=\\\"6169\\\" data-end=\\\"6184\\\" data-col-size=\\\"sm\\\">Process Type<\\\/th><th data-start=\\\"6184\\\" data-end=\\\"6207\\\" data-col-size=\\\"xl\\\">Key Steps (summary)<\\\/th><\\\/tr><\\\/thead><tbody data-start=\\\"6218\\\" data-end=\\\"6917\\\"><tr data-start=\\\"6218\\\" data-end=\\\"6482\\\"><td data-start=\\\"6218\\\" data-end=\\\"6260\\\" data-col-size=\\\"sm\\\">NPTH (Non-Plated Through Hole) for PTFE<\\\/td><td data-col-size=\\\"xl\\\" data-start=\\\"6260\\\" data-end=\\\"6482\\\">Cutting \\u2192 Drilling \\u2192 Dry film \\u2192 Inspection \\u2192 Etch \\u2192 Etch inspection \\u2192 Solder mask \\u2192 Dry film exposure \\u2192 Hot air solder leveling (HASL) or tin spray \\u2192 Routing\\\/shaping \\u2192 Inspection \\u2192 Final inspection \\u2192 Packing \\u2192 Delivery<\\\/td><\\\/tr><tr data-start=\\\"6483\\\" data-end=\\\"6822\\\"><td data-start=\\\"6483\\\" data-end=\\\"6520\\\" data-col-size=\\\"sm\\\">PTH (Plated Through Hole) for PTFE<\\\/td><td data-col-size=\\\"xl\\\" data-start=\\\"6520\\\" data-end=\\\"6822\\\">Cutting \\u2192 Drilling \\u2192 Hole treatment (low-temp plasma or sodium naphthalene activation) \\u2192 Copper plating \\u2192 Panel electrical test \\u2192 Dry film \\u2192 Inspection \\u2192 Imaging \\u2192 Etch \\u2192 Etch inspection \\u2192 Solder mask \\u2192 Dry film exposure \\u2192 HASL \\u2192 Routing\\\/shaping \\u2192 Inspection \\u2192 Final inspection \\u2192 Packing \\u2192 Delivery<\\\/td><\\\/tr><tr data-start=\\\"6823\\\" data-end=\\\"6917\\\"><td data-start=\\\"6823\\\" data-end=\\\"6854\\\" data-col-size=\\\"sm\\\">Solder mask process controls<\\\/td><td data-col-size=\\\"xl\\\" data-start=\\\"6854\\\" data-end=\\\"6917\\\">Control green mask adhesion and bubble formation carefully.<\\\/td><\\\/tr><\\\/tbody><\\\/table><\\\/div><\\\/div><p data-start=\\\"6919\\\" data-end=\\\"6999\\\">Note: Each process step must control surface scratch and other defects strictly.<\\\/p><hr data-start=\\\"7001\\\" data-end=\\\"7004\\\" \\\/><h1 data-start=\\\"7006\\\" data-end=\\\"7043\\\">Applications of High-Frequency PCBs<\\\/h1><p data-start=\\\"7045\\\" data-end=\\\"7084\\\">High-frequency PCBs commonly appear in:<\\\/p><ul data-start=\\\"7086\\\" data-end=\\\"7468\\\"><li data-start=\\\"7086\\\" data-end=\\\"7137\\\"><p data-start=\\\"7088\\\" data-end=\\\"7137\\\">Power amplifiers and low noise amplifiers (LNA)<\\\/p><\\\/li><li data-start=\\\"7138\\\" data-end=\\\"7198\\\"><p data-start=\\\"7140\\\" data-end=\\\"7198\\\">Mobile communication products and smart lighting systems<\\\/p><\\\/li><li data-start=\\\"7199\\\" data-end=\\\"7273\\\"><p data-start=\\\"7201\\\" data-end=\\\"7273\\\">Power dividers, couplers, duplexers, filters and other passive devices<\\\/p><\\\/li><li data-start=\\\"7274\\\" data-end=\\\"7366\\\"><p data-start=\\\"7276\\\" data-end=\\\"7366\\\">Automotive collision avoidance systems, communication satellites, wireless phone systems<\\\/p><\\\/li><li data-start=\\\"7367\\\" data-end=\\\"7468\\\"><p data-start=\\\"7369\\\" data-end=\\\"7468\\\">In short, electronics are moving to higher frequencies and high-frequency boards follow this trend.<\\\/p><\\\/li><\\\/ul><hr data-start=\\\"7470\\\" data-end=\\\"7473\\\" \\\/><h1 data-start=\\\"7475\\\" data-end=\\\"7510\\\">How to Design High-Frequency PCBs<\\\/h1><p data-start=\\\"7512\\\" data-end=\\\"7840\\\">In high-frequency PCB design, power plane layout is critical. Usually put power on its own layer. This helps the circuit follow the path of least impedance. Power plane must provide return paths for all signals on the PCB. That lowers loop area and reduces noise. Low-frequency designers often ignore some of these noise issues.<\\\/p><p data-start=\\\"7842\\\" data-end=\\\"7890\\\">Follow these rules in high-frequency PCB design:<\\\/p><ul data-start=\\\"7892\\\" data-end=\\\"8086\\\"><li data-start=\\\"7892\\\" data-end=\\\"7937\\\"><p data-start=\\\"7894\\\" data-end=\\\"7937\\\">Keep power and ground stable and unified.<\\\/p><\\\/li><li data-start=\\\"7938\\\" data-end=\\\"8001\\\"><p data-start=\\\"7940\\\" data-end=\\\"8001\\\">Careful routing and correct termination remove reflections.<\\\/p><\\\/li><li data-start=\\\"8002\\\" data-end=\\\"8086\\\"><p data-start=\\\"8004\\\" data-end=\\\"8086\\\">Careful routing and correct termination reduce capacitance and measured crosstalk.<\\\/p><\\\/li><\\\/ul><p data-start=\\\"8088\\\" data-end=\\\"8124\\\">Below I expand several key subjects.<\\\/p><h2 data-start=\\\"8126\\\" data-end=\\\"8156\\\">(1) Transmission line width<\\\/h2><p data-start=\\\"8158\\\" data-end=\\\"8249\\\">Transmission line width in high-frequency PCB design must follow impedance matching theory.<\\\/p><p data-start=\\\"8251\\\" data-end=\\\"8701\\\"><strong data-start=\\\"8251\\\" data-end=\\\"8273\\\">Impedance matching<\\\/strong><br data-start=\\\"8273\\\" data-end=\\\"8276\\\" \\\/>When input\\\/output impedance and transmission line impedance match, the system gives maximum output power and minimum reflection. For microwave circuits, matching must also consider device bias points. Vias on signal lines change transmission properties. For TTL and CMOS, characteristic impedance is high, so the effect is small. But for 50 \\u03a9 low-impedance RF lines, vias must be considered. Usually avoid vias on such lines.<\\\/p><h2 data-start=\\\"8703\\\" data-end=\\\"8755\\\">(2) Crosstalk between parallel transmission lines<\\\/h2><p data-start=\\\"8757\\\" data-end=\\\"9122\\\">When two microstrip lines run close and parallel, coupling occurs. They cause crosstalk and change line characteristic impedance. Pay attention for 50 \\u03a9 and 75 \\u03a9 circuits. Designers can use coupling for some functions, such as directional couplers or power measurement. Example values from one design (1.97 GHz PCS end base station amplifier, dielectric \\u03b5r = 3.48):<\\\/p><ul data-start=\\\"9124\\\" data-end=\\\"9266\\\"><li data-start=\\\"9124\\\" data-end=\\\"9195\\\"><p data-start=\\\"9126\\\" data-end=\\\"9195\\\">For a 10 dB directional coupler: S = 5 mil, l = 920 mil, W = 53 mil<\\\/p><\\\/li><li data-start=\\\"9196\\\" data-end=\\\"9266\\\"><p data-start=\\\"9198\\\" data-end=\\\"9266\\\">For a 20 dB directional coupler: S = 35 mil, l = 920 mil, W = 62 mil<\\\/p><\\\/li><\\\/ul><p data-start=\\\"9268\\\" data-end=\\\"9308\\\">To reduce crosstalk, follow these rules:<\\\/p><p data-start=\\\"9310\\\" data-end=\\\"9556\\\">A. Keep spacing S between high-frequency or high-speed parallel lines at least one line width.<br data-start=\\\"9404\\\" data-end=\\\"9407\\\" \\\/>B. Cut down parallel length where possible.<br data-start=\\\"9450\\\" data-end=\\\"9453\\\" \\\/>C. Keep tiny high-frequency signals away from power and logic lines that can cause strong interference.<\\\/p><h2 data-start=\\\"9558\\\" data-end=\\\"9600\\\">(3) Ground via electromagnetic analysis<\\\/h2><p data-start=\\\"9602\\\" data-end=\\\"10021\\\">For IC ground pins or other ground pins, put ground vias close to pins in high-frequency circuits. The idea: a short ground path acts like an inductive impedance. Ground via also looks inductive. This affects filter function. That is why place ground vias close to pins. To reduce inductive load, use more ground vias than in low-frequency boards. This raises ground current capacity and helps keep all points near 0 V.<\\\/p><h2 data-start=\\\"10023\\\" data-end=\\\"10045\\\">(4) Power filtering<\\\/h2><p data-start=\\\"10047\\\" data-end=\\\"10529\\\">For TTL and CMOS, designers add bypass capacitors near power pins to reduce logic noise. For high-frequency and microwave circuits, this is not enough. High-frequency signals make high-frequency interference on power. Use series inductors and capacitors. Choose inductors by working frequency. Example: to filter &gt;1 MHz noise with C = 0.1 \\u03bcF, pick L = 1 \\u03bcH. When adding inductance on collector open-circuit signal pins, be careful. The inductor acts like a matching inductance then.<\\\/p><h2 data-start=\\\"10531\\\" data-end=\\\"10547\\\">(5) Shielding<\\\/h2><p data-start=\\\"10549\\\" data-end=\\\"10680\\\">Use shielding to protect small or high-frequency signals. This reduces strong signal interference and reduces EMI. Some guidelines:<\\\/p><p data-start=\\\"10682\\\" data-end=\\\"10902\\\">A. In low frequency digital\\\/analog (&lt;30 MHz) small-signal designs, split digital and analog grounds, and pour ground plane in small-signal zones. Keep distance between ground pour and traces greater than the trace width.<\\\/p><p data-start=\\\"10904\\\" data-end=\\\"11021\\\">B. In high-frequency digital\\\/analog small-signal design, add shielding cans or stitched ground vias to isolate areas.<\\\/p><p data-start=\\\"10904\\\" data-end=\\\"11021\\\"><img class=\\\"alignnone size-full wp-image-2729\\\" src=\\\"https:\\\/\\\/flj-pcb.com\\\/wp-content\\\/uploads\\\/2025\\\/09\\\/Isola-PCB.webp\\\" alt=\\\"Isola-PCB\\\" width=\\\"600\\\" height=\\\"449\\\" \\\/><\\\/p><p data-start=\\\"11023\\\" data-end=\\\"11245\\\">C. For high-power high-frequency circuits, make the high-frequency part a separate functional module and add a metal shield box to lower radiation. For example, optical fiber transceiver modules at 155 M, 622 M, or 2 Gb\\\/s.<\\\/p><p data-start=\\\"11247\\\" data-end=\\\"11435\\\">A multi-layer PCB for mobile phone (example: Nokia 6110) may place components on both sides and use internal ground pours as shown in the original figure. (Figure references omitted here.)<\\\/p><hr data-start=\\\"11437\\\" data-end=\\\"11440\\\" \\\/><h1 data-start=\\\"11442\\\" data-end=\\\"11490\\\">Examples of Material Selection for High Boards<\\\/h1><p data-start=\\\"11492\\\" data-end=\\\"11548\\\">Below are examples from boards we designed and debugged:<\\\/p><div class=\\\"_tableContainer_sk2ct_1\\\"><div class=\\\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\\\" tabindex=\\\"-1\\\"><table class=\\\"w-fit min-w-(--thread-content-width)\\\" data-start=\\\"11550\\\" data-end=\\\"12491\\\"><thead data-start=\\\"11550\\\" data-end=\\\"11608\\\"><tr data-start=\\\"11550\\\" data-end=\\\"11608\\\"><th data-start=\\\"11550\\\" data-end=\\\"11580\\\" data-col-size=\\\"sm\\\">Application (freq \\\/ device)<\\\/th><th data-start=\\\"11580\\\" data-end=\\\"11599\\\" data-col-size=\\\"md\\\">Material \\\/ Stack<\\\/th><th data-start=\\\"11599\\\" data-end=\\\"11608\\\" data-col-size=\\\"md\\\">Notes<\\\/th><\\\/tr><\\\/thead><tbody data-start=\\\"11624\\\" data-end=\\\"12491\\\"><tr data-start=\\\"11624\\\" data-end=\\\"11797\\\"><td data-start=\\\"11624\\\" data-end=\\\"11656\\\" data-col-size=\\\"sm\\\">2.4 GHz spread spectrum relay<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"11656\\\" data-end=\\\"11700\\\">FR-4, 4-layer PCB with large ground pours<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"11700\\\" data-end=\\\"11797\\\">High-frequency analog part separated. Power lines use inductors to isolate from digital part.<\\\/td><\\\/tr><tr data-start=\\\"11798\\\" data-end=\\\"11939\\\"><td data-start=\\\"11798\\\" data-end=\\\"11823\\\" data-col-size=\\\"sm\\\">2.4 GHz RF transceiver<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"11823\\\" data-end=\\\"11859\\\">PTFE material, double-sided board<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"11859\\\" data-end=\\\"11939\\\">RF transmit and receive in separate metal shield cans; power input filtered.<\\\/td><\\\/tr><tr data-start=\\\"11940\\\" data-end=\\\"12035\\\"><td data-start=\\\"11940\\\" data-end=\\\"11965\\\" data-col-size=\\\"sm\\\">1.9 GHz RF transceiver<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"11965\\\" data-end=\\\"11994\\\">PTFE material, 4-layer PCB<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"11994\\\" data-end=\\\"12035\\\">Use large ground pours and shielding.<\\\/td><\\\/tr><tr data-start=\\\"12036\\\" data-end=\\\"12123\\\"><td data-start=\\\"12036\\\" data-end=\\\"12061\\\" data-col-size=\\\"sm\\\">140 MHz IF transceiver<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"12061\\\" data-end=\\\"12086\\\">Top layer S1139 0.3 mm<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"12086\\\" data-end=\\\"12123\\\">Large ground pour; via isolation.<\\\/td><\\\/tr><tr data-start=\\\"12124\\\" data-end=\\\"12223\\\"><td data-start=\\\"12124\\\" data-end=\\\"12148\\\" data-col-size=\\\"sm\\\">70 MHz IF transceiver<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"12148\\\" data-end=\\\"12168\\\">FR-4, 4-layer PCB<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"12168\\\" data-end=\\\"12223\\\">Large ground pour; module isolation via via fences.<\\\/td><\\\/tr><tr data-start=\\\"12224\\\" data-end=\\\"12385\\\"><td data-start=\\\"12224\\\" data-end=\\\"12247\\\" data-col-size=\\\"sm\\\">30 W power amplifier<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"12247\\\" data-end=\\\"12283\\\">RO4350 material, double-sided PCB<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"12283\\\" data-end=\\\"12385\\\">Large ground pour; spacing controlled to &gt;= 50 \\u03a9 line width; shield box and power input filtering.<\\\/td><\\\/tr><tr data-start=\\\"12386\\\" data-end=\\\"12491\\\"><td data-start=\\\"12386\\\" data-end=\\\"12414\\\" data-col-size=\\\"sm\\\">2000 MHz microwave source<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"12414\\\" data-end=\\\"12433\\\">S1139 0.8 mm top<\\\/td><td data-col-size=\\\"md\\\" data-start=\\\"12433\\\" data-end=\\\"12491\\\">Double-sided PCB; precise control of trace dimensions.<\\\/td><\\\/tr><\\\/tbody><\\\/table><\\\/div><\\\/div><p data-start=\\\"12493\\\" data-end=\\\"12573\\\">Use these as examples. Each project needs its own material and thickness choice.<\\\/p><hr data-start=\\\"12575\\\" data-end=\\\"12578\\\" \\\/><h1 data-start=\\\"12580\\\" data-end=\\\"12622\\\">High-Frequency PCB Material Requirements<\\\/h1><p data-start=\\\"12624\\\" data-end=\\\"12677\\\">Designers should check these key material properties:<\\\/p><ol data-start=\\\"12679\\\" data-end=\\\"13167\\\"><li data-start=\\\"12679\\\" data-end=\\\"12784\\\"><p data-start=\\\"12682\\\" data-end=\\\"12784\\\"><strong data-start=\\\"12682\\\" data-end=\\\"12720\\\">Dielectric loss (Df, loss tangent)<\\\/strong> must be very small. Small loss means less signal attenuation.<\\\/p><\\\/li><li data-start=\\\"12785\\\" data-end=\\\"12884\\\"><p data-start=\\\"12788\\\" data-end=\\\"12884\\\"><strong data-start=\\\"12788\\\" data-end=\\\"12812\\\">Low water absorption<\\\/strong> is important. High water uptake changes dielectric constant and loss.<\\\/p><\\\/li><li data-start=\\\"12885\\\" data-end=\\\"13021\\\"><p data-start=\\\"12888\\\" data-end=\\\"13021\\\"><strong data-start=\\\"12888\\\" data-end=\\\"12916\\\">Dielectric constant (DK)<\\\/strong> must be low and stable. Lower DK gives higher signal speed. DK stability also helps impedance control.<\\\/p><\\\/li><li data-start=\\\"13022\\\" data-end=\\\"13167\\\"><p data-start=\\\"13025\\\" data-end=\\\"13167\\\"><strong data-start=\\\"13025\\\" data-end=\\\"13050\\\">CTE and thermal match<\\\/strong> between copper foil and base must be similar. Large mismatch over temperature changes can cause copper delamination.<\\\/p><\\\/li><\\\/ol><p data-start=\\\"13169\\\" data-end=\\\"13256\\\">High frequency often means use of fluoropolymer substrates like PTFE (known as Teflon).<\\\/p><hr data-start=\\\"13258\\\" data-end=\\\"13261\\\" \\\/><h1 data-start=\\\"13263\\\" data-end=\\\"13321\\\">Manufacturing Notes and Cautions for High-Frequency PCBs<\\\/h1><ol data-start=\\\"13323\\\" data-end=\\\"13843\\\"><li data-start=\\\"13323\\\" data-end=\\\"13424\\\"><p data-start=\\\"13326\\\" data-end=\\\"13424\\\"><strong data-start=\\\"13326\\\" data-end=\\\"13358\\\">Impedance control is strict.<\\\/strong> Line width tolerance is tight. Typical control tolerance ~ \\u00b12%.<\\\/p><\\\/li><li data-start=\\\"13425\\\" data-end=\\\"13580\\\"><p data-start=\\\"13428\\\" data-end=\\\"13580\\\"><strong data-start=\\\"13428\\\" data-end=\\\"13473\\\">PTH adhesion is low on special materials.<\\\/strong> Use plasma surface roughening for holes and surfaces to increase adhesion for plating and solder resist.<\\\/p><\\\/li><li data-start=\\\"13581\\\" data-end=\\\"13711\\\"><p data-start=\\\"13584\\\" data-end=\\\"13711\\\"><strong data-start=\\\"13584\\\" data-end=\\\"13627\\\">Do not sand the board before soldering.<\\\/strong> This reduces adhesion. Use micro-etch solutions or other roughening methods only.<\\\/p><\\\/li><li data-start=\\\"13712\\\" data-end=\\\"13843\\\"><p data-start=\\\"13715\\\" data-end=\\\"13843\\\"><strong data-start=\\\"13715\\\" data-end=\\\"13783\\\">PTFE boards often cause rough edges with standard milling tools.<\\\/strong> Use special milling bits and follow PTFE routing practices.<\\\/p><\\\/li><\\\/ol><hr data-start=\\\"13845\\\" data-end=\\\"13848\\\" \\\/><h1 data-start=\\\"13850\\\" data-end=\\\"13868\\\">Short Conclusion<\\\/h1><p data-start=\\\"13870\\\" data-end=\\\"14235\\\">High-frequency PCBs need special materials and careful process control. Choose a material that fits your frequency and thermal needs. Control impedance and place ground vias closely. Use shielding and correct power filtering. Follow special handling steps for PTFE and other microwave laminates. 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class=\\\"elementor-element elementor-element-2fe9c4e e-flex e-con-boxed e-con e-parent\\\" data-id=\\\"2fe9c4e\\\" data-element_type=\\\"container\\\">\\n\\t\\t\\t\\t\\t<div class=\\\"e-con-inner\\\">\\n\\t\\t[elementor-element k=\\\"0e46bd9387093ca73b9000e38f18cce4\\\" data=\\\"{"id":"f058cdb","elType":"widget","settings":{"editor":"<h2 data-start=\"315\" data-end=\"345\">What Is a High-Frequency PCB<\/h2><p data-start=\"347\" data-end=\"753\">A<a href=\"https:\/\/en.wikipedia.org\/wiki\/Printed_circuit_board#High_frequency_PCBs\"> high-frequency PCB<\/a> is a special printed circuit board (PCB) used for high electromagnetic frequency signals. These boards are for radio frequencies above about 300 MHz (wavelength &lt; 1 m) and for microwave frequencies above about 3 GHz (wavelength &lt; 0.1 m). They are made on microwave base copper clad laminates. Production may use some standard rigid PCB steps or use special methods for these materials.<\/p><p data-start=\"347\" data-end=\"753\"><img class=\"alignnone size-full wp-image-2728\" src=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/High-Frequency-PCB.webp\" alt=\"High-Frequency PCB\" width=\"600\" height=\"372\" \/><\/p><p data-start=\"755\" data-end=\"1165\">With fast progress in technology, more devices work in the microwave band (&gt;1 GHz) and even in millimeter wave ranges (&gt;30 GHz). This means frequencies rise and material needs increase. Base materials must have very good electrical properties and good chemical stability. As the signal frequency goes up, material loss must stay very low. With the arrival of 5G, high-frequency materials became more important.<\/p><hr data-start=\"1167\" data-end=\"1170\" \/><h1 data-start=\"1172\" data-end=\"1207\">Advantages of High-Frequency PCBs<\/h1><p data-start=\"1209\" data-end=\"1430\"><strong data-start=\"1209\" data-end=\"1231\">1. High efficiency<\/strong><br data-start=\"1231\" data-end=\"1234\" \/>Materials with low dielectric constant cause low loss. Modern induction heating and other methods can hit targets and keep high efficiency. These boards also help reduce waste and fit green goals.<\/p><p data-start=\"1432\" data-end=\"1677\"><strong data-start=\"1432\" data-end=\"1449\">2. High speed<\/strong><br data-start=\"1449\" data-end=\"1452\" \/>Signal speed is inversely proportional to the square root of the dielectric constant. Lower dielectric constant means faster transmission. Special materials keep dielectric constant low and stable. This helps signal transfer.<\/p><p data-start=\"1679\" data-end=\"1970\"><strong data-start=\"1679\" data-end=\"1723\">3. Good control of heating or processing<\/strong><br data-start=\"1723\" data-end=\"1726\" \/>High-frequency boards are used in many fields that need precise heating of metal parts. You can control how deep or where to heat. You can focus on surface or deep heating. You can heat in a focused or spread way. The board allows fine control.<\/p><p data-start=\"1972\" data-end=\"2316\"><strong data-start=\"1972\" data-end=\"1996\">4. Strong durability<\/strong><br data-start=\"1996\" data-end=\"1999\" \/>Dielectric constant and dielectric material depend on environment. In humid areas, moisture hurts boards. High-frequency boards made from low water absorption material resist this. They resist chemical corrosion, moisture, high heat, and have high peel strength. These qualities make them strong in hard environments.<\/p><hr data-start=\"2318\" data-end=\"2321\" \/><h1 data-start=\"2323\" data-end=\"2375\">Common High-Frequency and High-Speed PCB Materials<\/h1><div class=\"_tableContainer_sk2ct_1\"><div class=\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\" tabindex=\"-1\"><table class=\"w-fit min-w-(--thread-content-width)\" data-start=\"2377\" data-end=\"2727\"><thead data-start=\"2377\" data-end=\"2419\"><tr data-start=\"2377\" data-end=\"2419\"><th data-start=\"2377\" data-end=\"2393\" data-col-size=\"sm\">Brand \/ Maker<\/th><th data-start=\"2393\" data-end=\"2419\" data-col-size=\"md\">Typical Series \/ Types<\/th><\/tr><\/thead><tbody data-start=\"2430\" data-end=\"2727\"><tr data-start=\"2430\" data-end=\"2473\"><td data-start=\"2430\" data-end=\"2439\" data-col-size=\"sm\">Rogers<\/td><td data-col-size=\"md\" data-start=\"2439\" data-end=\"2473\">RO4003, RO3003, RO4350, RO5880<\/td><\/tr><tr data-start=\"2474\" data-end=\"2537\"><td data-start=\"2474\" data-end=\"2509\" data-col-size=\"sm\">TUC (Taiyao \/ TaYa or TUC brand)<\/td><td data-col-size=\"md\" data-start=\"2509\" data-end=\"2537\">TUC862, 872SLK, 883, 933<\/td><\/tr><tr data-start=\"2538\" data-end=\"2574\"><td data-start=\"2538\" data-end=\"2550\" data-col-size=\"sm\">Panasonic<\/td><td data-col-size=\"md\" data-start=\"2550\" data-end=\"2574\">Megtron 4, Megtron 6<\/td><\/tr><tr data-start=\"2575\" data-end=\"2608\"><td data-start=\"2575\" data-end=\"2583\" data-col-size=\"sm\">Isola<\/td><td data-col-size=\"md\" data-start=\"2583\" data-end=\"2608\">FR408HR, IS620, IS680<\/td><\/tr><tr data-start=\"2609\" data-end=\"2643\"><td data-start=\"2609\" data-end=\"2617\" data-col-size=\"sm\">Nelco<\/td><td data-start=\"2617\" data-end=\"2643\" data-col-size=\"md\">N4000-13, N4000-13EPSI<\/td><\/tr><tr data-start=\"2644\" data-end=\"2727\"><td data-start=\"2644\" data-end=\"2670\" data-col-size=\"sm\">Domestic makers (China)<\/td><td data-col-size=\"md\" data-start=\"2670\" data-end=\"2727\">Dongguan Shengyi, Taizhou Wangling, Taixing Microwave<\/td><\/tr><\/tbody><\/table><\/div><\/div><p data-start=\"2729\" data-end=\"2849\">(Use these example materials as a starting point. Each design needs the right material choice for frequency and layout.)<\/p><hr data-start=\"2851\" data-end=\"2854\" \/><h1 data-start=\"2856\" data-end=\"2913\">Difference Between High-Frequency Boards and HDI Boards<\/h1><p data-start=\"2915\" data-end=\"3218\">High-frequency PCBs are for radar, test instruments, automotive collision-avoidance systems, communication satellites, wireless systems, and other fields. HDI (High Density Interconnect) boards are for small devices with many components. HDI often uses double-sided boards in products with small volume.<\/p><p data-start=\"3220\" data-end=\"3555\">A high-frequency board needs very high process control and precision. Many times designers start from FR-4 glass epoxy, but true high-frequency boards use special laminates. The board must have a small and stable dielectric constant, low dielectric loss, low water absorption, high temperature tolerance, and good corrosion resistance.<\/p><p data-start=\"3557\" data-end=\"3824\">An HDI board uses micro blind vias to reach high routing density. It has internal and external routing that connect by drilling and plating. HDI is for compact products. Some HDI designs use modular parallel modules and strong DSP control for power and load features.<\/p><hr data-start=\"3826\" data-end=\"3829\" \/><h1 data-start=\"3831\" data-end=\"3880\">Types \/ Classification of High-Frequency Boards<\/h1><p data-start=\"3882\" data-end=\"3938\">Below are common types and notes about their processing:<\/p><p data-start=\"3940\" data-end=\"3989\"><strong data-start=\"3940\" data-end=\"3987\">1. Powder-filled thermoset (ceramic filled)<\/strong><\/p><ul data-start=\"3990\" data-end=\"4260\"><li data-start=\"3990\" data-end=\"4078\"><p data-start=\"3992\" data-end=\"4078\">Materials and suppliers: Rogers 4350B \/ 4003C; Arlon 25N \/ 25FR; Taconic TLG series.<img class=\"size-full wp-image-2730 aligncenter\" src=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Rogers-4350b.webp\" alt=\"Rogers 4350b\" width=\"600\" height=\"308\" \/><\/p><\/li><li data-start=\"4079\" data-end=\"4260\"><p data-start=\"4081\" data-end=\"4260\">Processing: Steps are similar to FR-4 epoxy glass laminates. However, boards are brittle and easy to break. Tool life for drills and router bits drops about 20%. Handle with care.<\/p><\/li><\/ul><p data-start=\"4262\" data-end=\"4309\"><strong data-start=\"4262\" data-end=\"4307\">2. PTFE (polytetrafluoroethylene, Teflon)<\/strong><\/p><ul data-start=\"4310\" data-end=\"5232\"><li data-start=\"4310\" data-end=\"4539\"><p data-start=\"4312\" data-end=\"4338\">Materials and suppliers:<\/p><ul data-start=\"4341\" data-end=\"4539\"><li data-start=\"4341\" data-end=\"4389\"><p data-start=\"4343\" data-end=\"4389\">Rogers: RO3000 series, RT series, TMM series<img class=\"alignnone size-full wp-image-2731\" src=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Rogers-RO3003.webp\" alt=\"Rogers RO3003\" width=\"600\" height=\"450\" \/><\/p><\/li><li data-start=\"4392\" data-end=\"4439\"><p data-start=\"4394\" data-end=\"4439\">Arlon: AD\/AR series, IsoClad, CuClad series<\/p><\/li><li data-start=\"4442\" data-end=\"4488\"><p data-start=\"4444\" data-end=\"4488\">Taconic: RF series, TLX series, TLY series<\/p><\/li><li data-start=\"4491\" data-end=\"4539\"><p data-start=\"4493\" data-end=\"4539\">Taixing Microwave: F4B \/ F4BM \/ F4BK \/ TP-2B<\/p><\/li><\/ul><\/li><li data-start=\"4540\" data-end=\"5232\"><p data-start=\"4542\" data-end=\"4570\">Processing notes for PTFE:<\/p><ul data-start=\"4573\" data-end=\"5232\"><li data-start=\"4573\" data-end=\"4657\"><p data-start=\"4575\" data-end=\"4657\">Keep protective film when cutting raw sheets to avoid scratches and press marks.<\/p><\/li><li data-start=\"4660\" data-end=\"4791\"><p data-start=\"4662\" data-end=\"4791\">Use new drills (standard #130 drills recommended). For best results, drill one sheet at a time. Keep clamp pressure at ~40 psi.<\/p><\/li><li data-start=\"4794\" data-end=\"4872\"><p data-start=\"4796\" data-end=\"4872\">Use aluminum backstop and 1 mm melamine pads to hold PTFE during drilling.<\/p><\/li><li data-start=\"4875\" data-end=\"4931\"><p data-start=\"4877\" data-end=\"4931\">After drilling, blow dust out of holes with hot air.<\/p><\/li><li data-start=\"4934\" data-end=\"5044\"><p data-start=\"4936\" data-end=\"5044\">Use a stable drill machine. For small holes, increase speed and reduce chip load and spindle return speed.<\/p><\/li><li data-start=\"5047\" data-end=\"5155\"><p data-start=\"5049\" data-end=\"5155\">Hole surface treatment: low-temperature plasma or sodium naphthalene activation help hole metallization.<\/p><\/li><li data-start=\"5158\" data-end=\"5232\"><p data-start=\"5160\" data-end=\"5232\">PTH (plated through hole) copper deposition and adhesion need attention.<\/p><\/li><\/ul><\/li><\/ul><p data-start=\"5234\" data-end=\"5264\"><strong data-start=\"5234\" data-end=\"5262\">3. PTH copper deposition<\/strong><\/p><ul data-start=\"5265\" data-end=\"5384\"><li data-start=\"5265\" data-end=\"5384\"><p data-start=\"5267\" data-end=\"5384\">After micro-etch (~20 microinch control), perform PTH. If needed, run a second PTH pass as required by board routing.<\/p><\/li><\/ul><p data-start=\"5386\" data-end=\"5427\"><strong data-start=\"5386\" data-end=\"5425\">4. Solder mask (green mask) process<\/strong><\/p><ul data-start=\"5428\" data-end=\"5701\"><li data-start=\"5428\" data-end=\"5498\"><p data-start=\"5430\" data-end=\"5498\">Pre-process: use acid\/alkaline cleaning; avoid mechanical sanding.<\/p><\/li><li data-start=\"5499\" data-end=\"5574\"><p data-start=\"5501\" data-end=\"5574\">After pre-process, bake the board (90\u00b0C for 30 min) and apply dry film.<\/p><\/li><li data-start=\"5575\" data-end=\"5701\"><p data-start=\"5577\" data-end=\"5701\">Bake in three stages: 80\u00b0C, 100\u00b0C, 150\u00b0C, 30 min each. If mask shows oil spots, remove mask and repeat activation treatment.<\/p><\/li><\/ul><p data-start=\"5703\" data-end=\"5741\"><strong data-start=\"5703\" data-end=\"5739\">5. Routing \/ milling PTFE boards<\/strong><\/p><ul data-start=\"5742\" data-end=\"6038\"><li data-start=\"5742\" data-end=\"5835\"><p data-start=\"5744\" data-end=\"5835\">Use thin paper on PTFE trace side and clamp with FR-4 or phenolic backing during routing.<\/p><\/li><li data-start=\"5836\" data-end=\"6038\"><p data-start=\"5838\" data-end=\"6038\">After routing, hand-finish edge burrs and inspect carefully. Avoid damaging copper and board surface. Use sulfur-free separation paper. Reduce burrs well. The routing step must leave good edge finish.<\/p><\/li><\/ul><hr data-start=\"6040\" data-end=\"6043\" \/><h1 data-start=\"6045\" data-end=\"6093\">Production Flow for High-Frequency PTFE Boards<\/h1><p data-start=\"6095\" data-end=\"6167\">Below are three common process flows. I put them in a table for clarity.<\/p><div class=\"_tableContainer_sk2ct_1\"><div class=\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\" tabindex=\"-1\"><table class=\"w-fit min-w-(--thread-content-width)\" data-start=\"6169\" data-end=\"6917\"><thead data-start=\"6169\" data-end=\"6207\"><tr data-start=\"6169\" data-end=\"6207\"><th data-start=\"6169\" data-end=\"6184\" data-col-size=\"sm\">Process Type<\/th><th data-start=\"6184\" data-end=\"6207\" data-col-size=\"xl\">Key Steps (summary)<\/th><\/tr><\/thead><tbody data-start=\"6218\" data-end=\"6917\"><tr data-start=\"6218\" data-end=\"6482\"><td data-start=\"6218\" data-end=\"6260\" data-col-size=\"sm\">NPTH (Non-Plated Through Hole) for PTFE<\/td><td data-col-size=\"xl\" data-start=\"6260\" data-end=\"6482\">Cutting \u2192 Drilling \u2192 Dry film \u2192 Inspection \u2192 Etch \u2192 Etch inspection \u2192 Solder mask \u2192 Dry film exposure \u2192 Hot air solder leveling (HASL) or tin spray \u2192 Routing\/shaping \u2192 Inspection \u2192 Final inspection \u2192 Packing \u2192 Delivery<\/td><\/tr><tr data-start=\"6483\" data-end=\"6822\"><td data-start=\"6483\" data-end=\"6520\" data-col-size=\"sm\">PTH (Plated Through Hole) for PTFE<\/td><td data-col-size=\"xl\" data-start=\"6520\" data-end=\"6822\">Cutting \u2192 Drilling \u2192 Hole treatment (low-temp plasma or sodium naphthalene activation) \u2192 Copper plating \u2192 Panel electrical test \u2192 Dry film \u2192 Inspection \u2192 Imaging \u2192 Etch \u2192 Etch inspection \u2192 Solder mask \u2192 Dry film exposure \u2192 HASL \u2192 Routing\/shaping \u2192 Inspection \u2192 Final inspection \u2192 Packing \u2192 Delivery<\/td><\/tr><tr data-start=\"6823\" data-end=\"6917\"><td data-start=\"6823\" data-end=\"6854\" data-col-size=\"sm\">Solder mask process controls<\/td><td data-col-size=\"xl\" data-start=\"6854\" data-end=\"6917\">Control green mask adhesion and bubble formation carefully.<\/td><\/tr><\/tbody><\/table><\/div><\/div><p data-start=\"6919\" data-end=\"6999\">Note: Each process step must control surface scratch and other defects strictly.<\/p><hr data-start=\"7001\" data-end=\"7004\" \/><h1 data-start=\"7006\" data-end=\"7043\">Applications of High-Frequency PCBs<\/h1><p data-start=\"7045\" data-end=\"7084\">High-frequency PCBs commonly appear in:<\/p><ul data-start=\"7086\" data-end=\"7468\"><li data-start=\"7086\" data-end=\"7137\"><p data-start=\"7088\" data-end=\"7137\">Power amplifiers and low noise amplifiers (LNA)<\/p><\/li><li data-start=\"7138\" data-end=\"7198\"><p data-start=\"7140\" data-end=\"7198\">Mobile communication products and smart lighting systems<\/p><\/li><li data-start=\"7199\" data-end=\"7273\"><p data-start=\"7201\" data-end=\"7273\">Power dividers, couplers, duplexers, filters and other passive devices<\/p><\/li><li data-start=\"7274\" data-end=\"7366\"><p data-start=\"7276\" data-end=\"7366\">Automotive collision avoidance systems, communication satellites, wireless phone systems<\/p><\/li><li data-start=\"7367\" data-end=\"7468\"><p data-start=\"7369\" data-end=\"7468\">In short, electronics are moving to higher frequencies and high-frequency boards follow this trend.<\/p><\/li><\/ul><hr data-start=\"7470\" data-end=\"7473\" \/><h1 data-start=\"7475\" data-end=\"7510\">How to Design High-Frequency PCBs<\/h1><p data-start=\"7512\" data-end=\"7840\">In high-frequency PCB design, power plane layout is critical. Usually put power on its own layer. This helps the circuit follow the path of least impedance. Power plane must provide return paths for all signals on the PCB. That lowers loop area and reduces noise. Low-frequency designers often ignore some of these noise issues.<\/p><p data-start=\"7842\" data-end=\"7890\">Follow these rules in high-frequency PCB design:<\/p><ul data-start=\"7892\" data-end=\"8086\"><li data-start=\"7892\" data-end=\"7937\"><p data-start=\"7894\" data-end=\"7937\">Keep power and ground stable and unified.<\/p><\/li><li data-start=\"7938\" data-end=\"8001\"><p data-start=\"7940\" data-end=\"8001\">Careful routing and correct termination remove reflections.<\/p><\/li><li data-start=\"8002\" data-end=\"8086\"><p data-start=\"8004\" data-end=\"8086\">Careful routing and correct termination reduce capacitance and measured crosstalk.<\/p><\/li><\/ul><p data-start=\"8088\" data-end=\"8124\">Below I expand several key subjects.<\/p><h2 data-start=\"8126\" data-end=\"8156\">(1) Transmission line width<\/h2><p data-start=\"8158\" data-end=\"8249\">Transmission line width in high-frequency PCB design must follow impedance matching theory.<\/p><p data-start=\"8251\" data-end=\"8701\"><strong data-start=\"8251\" data-end=\"8273\">Impedance matching<\/strong><br data-start=\"8273\" data-end=\"8276\" \/>When input\/output impedance and transmission line impedance match, the system gives maximum output power and minimum reflection. For microwave circuits, matching must also consider device bias points. Vias on signal lines change transmission properties. For TTL and CMOS, characteristic impedance is high, so the effect is small. But for 50 \u03a9 low-impedance RF lines, vias must be considered. Usually avoid vias on such lines.<\/p><h2 data-start=\"8703\" data-end=\"8755\">(2) Crosstalk between parallel transmission lines<\/h2><p data-start=\"8757\" data-end=\"9122\">When two microstrip lines run close and parallel, coupling occurs. They cause crosstalk and change line characteristic impedance. Pay attention for 50 \u03a9 and 75 \u03a9 circuits. Designers can use coupling for some functions, such as directional couplers or power measurement. Example values from one design (1.97 GHz PCS end base station amplifier, dielectric \u03b5r = 3.48):<\/p><ul data-start=\"9124\" data-end=\"9266\"><li data-start=\"9124\" data-end=\"9195\"><p data-start=\"9126\" data-end=\"9195\">For a 10 dB directional coupler: S = 5 mil, l = 920 mil, W = 53 mil<\/p><\/li><li data-start=\"9196\" data-end=\"9266\"><p data-start=\"9198\" data-end=\"9266\">For a 20 dB directional coupler: S = 35 mil, l = 920 mil, W = 62 mil<\/p><\/li><\/ul><p data-start=\"9268\" data-end=\"9308\">To reduce crosstalk, follow these rules:<\/p><p data-start=\"9310\" data-end=\"9556\">A. Keep spacing S between high-frequency or high-speed parallel lines at least one line width.<br data-start=\"9404\" data-end=\"9407\" \/>B. Cut down parallel length where possible.<br data-start=\"9450\" data-end=\"9453\" \/>C. Keep tiny high-frequency signals away from power and logic lines that can cause strong interference.<\/p><h2 data-start=\"9558\" data-end=\"9600\">(3) Ground via electromagnetic analysis<\/h2><p data-start=\"9602\" data-end=\"10021\">For IC ground pins or other ground pins, put ground vias close to pins in high-frequency circuits. The idea: a short ground path acts like an inductive impedance. Ground via also looks inductive. This affects filter function. That is why place ground vias close to pins. To reduce inductive load, use more ground vias than in low-frequency boards. This raises ground current capacity and helps keep all points near 0 V.<\/p><h2 data-start=\"10023\" data-end=\"10045\">(4) Power filtering<\/h2><p data-start=\"10047\" data-end=\"10529\">For TTL and CMOS, designers add bypass capacitors near power pins to reduce logic noise. For high-frequency and microwave circuits, this is not enough. High-frequency signals make high-frequency interference on power. Use series inductors and capacitors. Choose inductors by working frequency. Example: to filter &gt;1 MHz noise with C = 0.1 \u03bcF, pick L = 1 \u03bcH. When adding inductance on collector open-circuit signal pins, be careful. The inductor acts like a matching inductance then.<\/p><h2 data-start=\"10531\" data-end=\"10547\">(5) Shielding<\/h2><p data-start=\"10549\" data-end=\"10680\">Use shielding to protect small or high-frequency signals. This reduces strong signal interference and reduces EMI. Some guidelines:<\/p><p data-start=\"10682\" data-end=\"10902\">A. In low frequency digital\/analog (&lt;30 MHz) small-signal designs, split digital and analog grounds, and pour ground plane in small-signal zones. Keep distance between ground pour and traces greater than the trace width.<\/p><p data-start=\"10904\" data-end=\"11021\">B. In high-frequency digital\/analog small-signal design, add shielding cans or stitched ground vias to isolate areas.<\/p><p data-start=\"10904\" data-end=\"11021\"><img class=\"alignnone size-full wp-image-2729\" src=\"https:\/\/flj-pcb.com\/wp-content\/uploads\/2025\/09\/Isola-PCB.webp\" alt=\"Isola-PCB\" width=\"600\" height=\"449\" \/><\/p><p data-start=\"11023\" data-end=\"11245\">C. For high-power high-frequency circuits, make the high-frequency part a separate functional module and add a metal shield box to lower radiation. For example, optical fiber transceiver modules at 155 M, 622 M, or 2 Gb\/s.<\/p><p data-start=\"11247\" data-end=\"11435\">A multi-layer PCB for mobile phone (example: Nokia 6110) may place components on both sides and use internal ground pours as shown in the original figure. (Figure references omitted here.)<\/p><hr data-start=\"11437\" data-end=\"11440\" \/><h1 data-start=\"11442\" data-end=\"11490\">Examples of Material Selection for High Boards<\/h1><p data-start=\"11492\" data-end=\"11548\">Below are examples from boards we designed and debugged:<\/p><div class=\"_tableContainer_sk2ct_1\"><div class=\"_tableWrapper_sk2ct_13 group flex w-fit flex-col-reverse\" tabindex=\"-1\"><table class=\"w-fit min-w-(--thread-content-width)\" data-start=\"11550\" data-end=\"12491\"><thead data-start=\"11550\" data-end=\"11608\"><tr data-start=\"11550\" data-end=\"11608\"><th data-start=\"11550\" data-end=\"11580\" data-col-size=\"sm\">Application (freq \/ device)<\/th><th data-start=\"11580\" data-end=\"11599\" data-col-size=\"md\">Material \/ Stack<\/th><th data-start=\"11599\" data-end=\"11608\" data-col-size=\"md\">Notes<\/th><\/tr><\/thead><tbody data-start=\"11624\" data-end=\"12491\"><tr data-start=\"11624\" data-end=\"11797\"><td data-start=\"11624\" data-end=\"11656\" data-col-size=\"sm\">2.4 GHz spread spectrum relay<\/td><td data-col-size=\"md\" data-start=\"11656\" data-end=\"11700\">FR-4, 4-layer PCB with large ground pours<\/td><td data-col-size=\"md\" data-start=\"11700\" data-end=\"11797\">High-frequency analog part separated. Power lines use inductors to isolate from digital part.<\/td><\/tr><tr data-start=\"11798\" data-end=\"11939\"><td data-start=\"11798\" data-end=\"11823\" data-col-size=\"sm\">2.4 GHz RF transceiver<\/td><td data-col-size=\"md\" data-start=\"11823\" data-end=\"11859\">PTFE material, double-sided board<\/td><td data-col-size=\"md\" data-start=\"11859\" data-end=\"11939\">RF transmit and receive in separate metal shield cans; power input filtered.<\/td><\/tr><tr data-start=\"11940\" data-end=\"12035\"><td data-start=\"11940\" data-end=\"11965\" data-col-size=\"sm\">1.9 GHz RF transceiver<\/td><td data-col-size=\"md\" data-start=\"11965\" data-end=\"11994\">PTFE material, 4-layer PCB<\/td><td data-col-size=\"md\" data-start=\"11994\" data-end=\"12035\">Use large ground pours and shielding.<\/td><\/tr><tr data-start=\"12036\" data-end=\"12123\"><td data-start=\"12036\" data-end=\"12061\" data-col-size=\"sm\">140 MHz IF transceiver<\/td><td data-col-size=\"md\" data-start=\"12061\" data-end=\"12086\">Top layer S1139 0.3 mm<\/td><td data-col-size=\"md\" data-start=\"12086\" data-end=\"12123\">Large ground pour; via isolation.<\/td><\/tr><tr data-start=\"12124\" data-end=\"12223\"><td data-start=\"12124\" data-end=\"12148\" data-col-size=\"sm\">70 MHz IF transceiver<\/td><td data-col-size=\"md\" data-start=\"12148\" data-end=\"12168\">FR-4, 4-layer PCB<\/td><td data-col-size=\"md\" data-start=\"12168\" data-end=\"12223\">Large ground pour; module isolation via via fences.<\/td><\/tr><tr data-start=\"12224\" data-end=\"12385\"><td data-start=\"12224\" data-end=\"12247\" data-col-size=\"sm\">30 W power amplifier<\/td><td data-col-size=\"md\" data-start=\"12247\" data-end=\"12283\">RO4350 material, double-sided PCB<\/td><td data-col-size=\"md\" data-start=\"12283\" data-end=\"12385\">Large ground pour; spacing controlled to &gt;= 50 \u03a9 line width; shield box and power input filtering.<\/td><\/tr><tr data-start=\"12386\" data-end=\"12491\"><td data-start=\"12386\" data-end=\"12414\" data-col-size=\"sm\">2000 MHz microwave source<\/td><td data-col-size=\"md\" data-start=\"12414\" data-end=\"12433\">S1139 0.8 mm top<\/td><td data-col-size=\"md\" data-start=\"12433\" data-end=\"12491\">Double-sided PCB; precise control of trace dimensions.<\/td><\/tr><\/tbody><\/table><\/div><\/div><p data-start=\"12493\" data-end=\"12573\">Use these as examples. Each project needs its own material and thickness choice.<\/p><hr data-start=\"12575\" data-end=\"12578\" \/><h1 data-start=\"12580\" data-end=\"12622\">High-Frequency PCB Material Requirements<\/h1><p data-start=\"12624\" data-end=\"12677\">Designers should check these key material properties:<\/p><ol data-start=\"12679\" data-end=\"13167\"><li data-start=\"12679\" data-end=\"12784\"><p data-start=\"12682\" data-end=\"12784\"><strong data-start=\"12682\" data-end=\"12720\">Dielectric loss (Df, loss tangent)<\/strong> must be very small. Small loss means less signal attenuation.<\/p><\/li><li data-start=\"12785\" data-end=\"12884\"><p data-start=\"12788\" data-end=\"12884\"><strong data-start=\"12788\" data-end=\"12812\">Low water absorption<\/strong> is important. High water uptake changes dielectric constant and loss.<\/p><\/li><li data-start=\"12885\" data-end=\"13021\"><p data-start=\"12888\" data-end=\"13021\"><strong data-start=\"12888\" data-end=\"12916\">Dielectric constant (DK)<\/strong> must be low and stable. Lower DK gives higher signal speed. DK stability also helps impedance control.<\/p><\/li><li data-start=\"13022\" data-end=\"13167\"><p data-start=\"13025\" data-end=\"13167\"><strong data-start=\"13025\" data-end=\"13050\">CTE and thermal match<\/strong> between copper foil and base must be similar. Large mismatch over temperature changes can cause copper delamination.<\/p><\/li><\/ol><p data-start=\"13169\" data-end=\"13256\">High frequency often means use of fluoropolymer substrates like PTFE (known as Teflon).<\/p><hr data-start=\"13258\" data-end=\"13261\" \/><h1 data-start=\"13263\" data-end=\"13321\">Manufacturing Notes and Cautions for High-Frequency PCBs<\/h1><ol data-start=\"13323\" data-end=\"13843\"><li data-start=\"13323\" data-end=\"13424\"><p data-start=\"13326\" data-end=\"13424\"><strong data-start=\"13326\" data-end=\"13358\">Impedance control is strict.<\/strong> Line width tolerance is tight. Typical control tolerance ~ \u00b12%.<\/p><\/li><li data-start=\"13425\" data-end=\"13580\"><p data-start=\"13428\" data-end=\"13580\"><strong data-start=\"13428\" data-end=\"13473\">PTH adhesion is low on special materials.<\/strong> Use plasma surface roughening for holes and surfaces to increase adhesion for plating and solder resist.<\/p><\/li><li data-start=\"13581\" data-end=\"13711\"><p data-start=\"13584\" data-end=\"13711\"><strong data-start=\"13584\" data-end=\"13627\">Do not sand the board before soldering.<\/strong> This reduces adhesion. Use micro-etch solutions or other roughening methods only.<\/p><\/li><li data-start=\"13712\" data-end=\"13843\"><p data-start=\"13715\" data-end=\"13843\"><strong data-start=\"13715\" data-end=\"13783\">PTFE boards often cause rough edges with standard milling tools.<\/strong> Use special milling bits and follow PTFE routing practices.<\/p><\/li><\/ol><hr data-start=\"13845\" data-end=\"13848\" \/><h1 data-start=\"13850\" data-end=\"13868\">Short Conclusion<\/h1><p data-start=\"13870\" data-end=\"14235\">High-frequency PCBs need special materials and careful process control. Choose a material that fits your frequency and thermal needs. Control impedance and place ground vias closely. Use shielding and correct power filtering. Follow special handling steps for PTFE and other microwave laminates. These steps improve performance and yield in high-frequency circuits.<\/p>","display_condition_list":[{"display_condition_login_status":"subscriber","_id":"18e069d"}]},"elements":[],"widgetType":"text-editor"}\\\"]\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t<section class=\\\"elementor-section elementor-top-section elementor-element elementor-element-brlk2x4 elementor-section-content-top elementor-section-boxed elementor-section-height-default elementor-section-height-default\\\" data-id=\\\"brlk2x4\\\" data-element_type=\\\"section\\\" data-settings=\\\"{&quot;background_background&quot;:&quot;classic&quot;}\\\">\\n\\t\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-background-overlay\\\"><\\\/div>\\n\\t\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-container elementor-column-gap-no\\\">\\n\\t\\t\\t\\t\\t<div class=\\\"elementor-column elementor-col-100 elementor-top-column elementor-element elementor-element-7882748\\\" data-id=\\\"7882748\\\" data-element_type=\\\"column\\\">\\n\\t\\t\\t<div class=\\\"elementor-widget-wrap elementor-element-populated\\\">\\n\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-element elementor-element-9fc6712 elementor-widget elementor-widget-heading\\\" data-id=\\\"9fc6712\\\" data-element_type=\\\"widget\\\" data-widget_type=\\\"heading.default\\\">\\n\\t\\t\\t\\t<div class=\\\"elementor-widget-container\\\">\\n\\t\\t\\t\\t\\t<h2 class=\\\"elementor-heading-title elementor-size-default\\\">Frequently Asked Questions<\\\/h2>\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t<div class=\\\"elementor-element elementor-element-631b990 elementor-widget elementor-widget-accordion\\\" data-id=\\\"631b990\\\" data-element_type=\\\"widget\\\" data-widget_type=\\\"accordion.default\\\">\\n\\t\\t\\t\\t<div class=\\\"elementor-widget-container\\\">\\n\\t\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-accordion\\\">\\n\\t\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-accordion-item\\\">\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-title-1031\\\" class=\\\"elementor-tab-title\\\" data-tab=\\\"1\\\" role=\\\"button\\\" aria-controls=\\\"elementor-tab-content-1031\\\" aria-expanded=\\\"false\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon elementor-accordion-icon-right\\\" aria-hidden=\\\"true\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-closed\\\"><svg class=\\\"e-font-icon-svg e-fas-plus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-opened\\\"><svg class=\\\"e-font-icon-svg e-fas-minus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<a class=\\\"elementor-accordion-title\\\" tabindex=\\\"0\\\">Which substrate materials are commonly used for high-frequency PCBs?<\\\/a>\\n\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-content-1031\\\" class=\\\"elementor-tab-content elementor-clearfix\\\" data-tab=\\\"1\\\" role=\\\"region\\\" aria-labelledby=\\\"elementor-tab-title-1031\\\"><p>Typical materials include PTFE (Teflon)-based laminates and engineered composites from suppliers like Rogers (RO3000\\\/RO4000\\\/RT\\\/duroid) and Isola, chosen for low loss tangent and stable dielectric constant.<\\\/p><\\\/div>\\n\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-accordion-item\\\">\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-title-1032\\\" class=\\\"elementor-tab-title\\\" data-tab=\\\"2\\\" role=\\\"button\\\" aria-controls=\\\"elementor-tab-content-1032\\\" aria-expanded=\\\"false\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon elementor-accordion-icon-right\\\" aria-hidden=\\\"true\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-closed\\\"><svg class=\\\"e-font-icon-svg e-fas-plus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-opened\\\"><svg class=\\\"e-font-icon-svg e-fas-minus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<a class=\\\"elementor-accordion-title\\\" tabindex=\\\"0\\\">Why not just use FR-4 for RF\\\/high-frequency designs?<\\\/a>\\n\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-content-1032\\\" class=\\\"elementor-tab-content elementor-clearfix\\\" data-tab=\\\"2\\\" role=\\\"region\\\" aria-labelledby=\\\"elementor-tab-title-1032\\\"><p>FR-4 has higher dielectric loss and less stable dielectric constant at GHz frequencies, which increases signal loss and impedance variability; for many RF or microwave applications, PTFE\\\/Rogers-class laminates perform much better.<\\\/p><\\\/div>\\n\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-accordion-item\\\">\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-title-1033\\\" class=\\\"elementor-tab-title\\\" data-tab=\\\"3\\\" role=\\\"button\\\" aria-controls=\\\"elementor-tab-content-1033\\\" aria-expanded=\\\"false\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon elementor-accordion-icon-right\\\" aria-hidden=\\\"true\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-closed\\\"><svg class=\\\"e-font-icon-svg e-fas-plus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-opened\\\"><svg class=\\\"e-font-icon-svg e-fas-minus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<a class=\\\"elementor-accordion-title\\\" tabindex=\\\"0\\\">What electrical properties matter most (Dk, loss tangent)?<\\\/a>\\n\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-content-1033\\\" class=\\\"elementor-tab-content elementor-clearfix\\\" data-tab=\\\"3\\\" role=\\\"region\\\" aria-labelledby=\\\"elementor-tab-title-1033\\\"><p>Dielectric constant (Dk) controls impedance and signal velocity; loss tangent (Df) governs signal attenuation. Low, stable Dk and low loss tangent are essential for consistent high-frequency performance.<\\\/p><\\\/div>\\n\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-accordion-item\\\">\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-title-1034\\\" class=\\\"elementor-tab-title\\\" data-tab=\\\"4\\\" role=\\\"button\\\" aria-controls=\\\"elementor-tab-content-1034\\\" aria-expanded=\\\"false\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon elementor-accordion-icon-right\\\" aria-hidden=\\\"true\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-closed\\\"><svg class=\\\"e-font-icon-svg e-fas-plus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-opened\\\"><svg class=\\\"e-font-icon-svg e-fas-minus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<a class=\\\"elementor-accordion-title\\\" tabindex=\\\"0\\\">Typical applications for high-frequency PCBs?<\\\/a>\\n\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-content-1034\\\" class=\\\"elementor-tab-content elementor-clearfix\\\" data-tab=\\\"4\\\" role=\\\"region\\\" aria-labelledby=\\\"elementor-tab-title-1034\\\"><p>Antennas, RF amplifiers, filters, 5G base stations, microwave radio links, satellite communications, radar, and high-speed RF modules.<\\\/p><\\\/div>\\n\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t\\t\\t<div class=\\\"elementor-accordion-item\\\">\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-title-1035\\\" class=\\\"elementor-tab-title\\\" data-tab=\\\"5\\\" role=\\\"button\\\" aria-controls=\\\"elementor-tab-content-1035\\\" aria-expanded=\\\"false\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon elementor-accordion-icon-right\\\" aria-hidden=\\\"true\\\">\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-closed\\\"><svg class=\\\"e-font-icon-svg e-fas-plus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zm144 276c0 6.6-5.4 12-12 12h-92v92c0 6.6-5.4 12-12 12h-56c-6.6 0-12-5.4-12-12v-92h-92c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h92v-92c0-6.6 5.4-12 12-12h56c6.6 0 12 5.4 12 12v92h92c6.6 0 12 5.4 12 12v56z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t<span class=\\\"elementor-accordion-icon-opened\\\"><svg class=\\\"e-font-icon-svg e-fas-minus-circle\\\" viewBox=\\\"0 0 512 512\\\" xmlns=\\\"http:\\\/\\\/www.w3.org\\\/2000\\\/svg\\\"><path d=\\\"M256 8C119 8 8 119 8 256s111 248 248 248 248-111 248-248S393 8 256 8zM124 296c-6.6 0-12-5.4-12-12v-56c0-6.6 5.4-12 12-12h264c6.6 0 12 5.4 12 12v56c0 6.6-5.4 12-12 12H124z\\\"><\\\/path><\\\/svg><\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<\\\/span>\\n\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t\\t<a class=\\\"elementor-accordion-title\\\" tabindex=\\\"0\\\">How do I choose the right high-frequency laminate?<\\\/a>\\n\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t<div id=\\\"elementor-tab-content-1035\\\" class=\\\"elementor-tab-content elementor-clearfix\\\" data-tab=\\\"5\\\" role=\\\"region\\\" aria-labelledby=\\\"elementor-tab-title-1035\\\"><p>Match required frequency range, target impedance stability, thermal\\\/CTE needs, and loss tangent. Review supplier datasheets (Rogers, Isola, etc.) and request material test data (Dk\\\/Df vs frequency).<\\\/p><\\\/div>\\n\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t<\\\/div>\\n\\t\\t\\t\\t\\t<\\\/div>\\n\\t\\t<\\\/section>\\n\\t\\t\",\"scripts\":[],\"styles\":[]}}"],"_uag_css_file_name":["uag-css-1909.css"],"_uag_js_file_name":["uag-js-1909.js"]},"uagb_featured_image_src":{"full":false,"thumbnail":false,"medium":false,"medium_large":false,"large":false,"1536x1536":false,"2048x2048":false,"trp-custom-language-flag":false},"uagb_author_info":{"display_name":"Philifast","author_link":"https:\/\/flj-pcb.com\/es\/author\/2475017442jygmail-com\/"},"uagb_comment_info":0,"uagb_excerpt":"What Is a High-Frequency PCB A high-frequency PCB is a special printed circuit board (PCB) used for high electromagnetic frequency [&hellip;]","_links":{"self":[{"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/pages\/1909","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/comments?post=1909"}],"version-history":[{"count":18,"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/pages\/1909\/revisions"}],"predecessor-version":[{"id":3345,"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/pages\/1909\/revisions\/3345"}],"up":[{"embeddable":true,"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/pages\/1898"}],"wp:attachment":[{"href":"https:\/\/flj-pcb.com\/es\/wp-json\/wp\/v2\/media?parent=1909"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}