射频电路与系统中电磁场的调节与控制

Kaixue Ma
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引用次数: 0

摘要

自射频(RF)电路的首次演示以来,电磁(EM)场的物理特性及其与协同设计电路的调节和控制已成为射频电路设计者的基本能力。利用先进的调节或控制方法,在射频和毫米波(mm-wave)频率上开发了许多高性能电路。电磁调节的主要方法有三种,即分离电磁耦合路径、通过多槽或多谐振器的耦合来操纵电磁能、调节空腔或基板中的电磁场。电场和磁场的分离耦合路径为设计具有准椭圆附加零响应的高性能滤波器拓扑提供了指导。通过多槽或多谐振器的电和磁耦合来操纵电磁场,例如用于振荡器,功率放大器(pa)等,可获得显着的功率效率,尺寸减小和宽带宽。通过空腔、有图案的衬底或超衬底来调节电磁,可以减少介电损耗和尺寸,特别是当使用衬底集成悬浮线(SISL)平台时。基于SISL的低损耗、高集成度和自封装的优秀电路已经被报道。在这里,我们介绍了最新的案例,展示了EM领域监管和控制的好处。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Regulation and Control of Electromagnetic Field in Radio-Frequency Circuits and Systems
Since the first demonstrations of radio-frequency (RF) circuits, the physics of the electromagnetic (EM) field and its regulation and control with codesigned circuits, have become essential competencies of RF circuit designers. Leveraging advanced regulation or control methods, numerous high-performance circuits have been developed at RF and millimeter-wave (mm-wave) frequencies. Three main methods of electromagnetic regulation have been widely utilized, namely, the separation of electric and magnetic coupling paths, the manipulation of electromagnetic energy through the coupling of multiple tanks or multiple resonators, and the regulation of electromagnetic fields in air cavities or meta-substrates. The separated coupling paths of electric and magnetic fields provide guidance for designing a high-performance filter topology with a quasielliptical response through additional zeros. The manipulation of the EM field through electrical and magnetic intercouplings of multitanks or multiresonators, such as are used in oscillators, power amplifiers (PAs), etc., results in remarkable power efficiency, size reduction, and wide bandwidth. The regulation of electromagnetism through an air cavity, patterned substrate, or metasubstrate reduces dielectric losses and size, especially when using a substrate integrated suspended line (SISL) platform. Many excellent circuits have been reported based on SISL with low loss, high integration, and self-packaging. Here, we present state-of-the-art cases that demonstrate the benefits of EM field regulation and control.
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