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Tunable RF Front-End Circuits for Advanced Communication Systems.

机译:适用于高级通信系统的可调RF前端电路。

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摘要

This thesis presents tunable RF front-end circuits for advanced communication systems by using packaged RF MEMS (Micro-Electro-Mechanical-Systems) devices or varactor diodes. First, a low-loss reflective phase shifter using commercial RF MEMS SPDT (Single-Pole-Double-Throw) switches is presented. The phase shifter can provide phase shifting of 0-123.75° with a step of 11.25° at 1.8-2.1 GHz. The measured average loss is ~0.83 dB and the measured IP3 is > 65 dB. The 4-element dipole phase array is also presented, which can scan up to 9° with a measured gain of 8.6-8.3 dB at 2 GHz. The array is capable of handling 5-10 W of power with no distortion and suitable for base-station applications.;The second project presents a 1.7-2.5 GHz asymmetric 4-pole tunable filter using the Cavendish Kinetics RF MEMS capacitors. The MEMS capacitors are fabricated and fully packaged using a 0.18 microm CMOS standard process with integrated high voltage drivers and SPI control logic and with reliability in the billions of cycles. The filter results in insertion loss < 3 dB for 8% FBW (fractional bandwidth), a power handling of at least 25 dBm, a second and third harmonic generation of 46 dBm. The measured ACPR (adjacent channel power ratio) for a 5-MHz Wideband CDMA signal is at least 54 dB at 25 dBm input power. The project also discusses the requirements on RF MEMS capacitors in order to achieve high performance filters for wireless systems and the effect of ENIG (Electroless Nickel Immersion Gold) on resonator quality factor and filter loss.;Next, an idea for implementing reconfigurable matching networks to realize a tunable diplexer is investigated and demonstrated. The reconfigurable matching networks ensure that the rejection band impedance of every filter is transformed to an open circuit over a wide range of frequencies, allowing two tunable filters to be connected together to form a tunable diplexer without affecting each other. The tunable diplexer is built using Schottky diodes and combline resonators on Duroid substrates, and can operate from 1.4-2.3 GHz with a closest frequency separation of 110 MHz. Measurements show virtually no difference in the frequency response between a stand-alone filter and a filter placed in the tunable diplexer. The work shows that a wideband tunable diplexer can therefore be realized using tunable bandpass filters and reconfigurable matching networks.;Finally, a novel tunable dual-band bandstop filter based on doubly-tuned RF transformers is presented. This design results in two distinct notch frequencies in a single resonator using silicon varactor diodes. The 2-pole tunable dual-band bandstop filters are implemented using PCB transformers and air-coil transformers. With PCB transformers, the lower frequency can be tuned at 513-845 MHz while the higher frequency can be tuned at 715-1151 MHz with a notch level > 16 dB. With air-coil transformers, a single-band 2-pole notch filter with wide rejection bandwidth is achieved. The design results in 604-982 MHz tuning with a 20-dB rejection bandwidth of 27-45 MHz. Also, by implementing a series varactor in a transformer, the separation between two coupled frequencies can be changed. The topology can be easily extended to higher-order filters and design equations are presented.
机译:本文提出了通过使用封装的RF MEMS(微机电系统)设备或变容二极管来实现高级通信系统的可调谐RF前端电路。首先,提出了一种使用商用RF MEMS SPDT(单刀双掷)开关的低损耗反射式移相器。移相器在1.8-2.1 GHz时可提供0-123.75°的相移,步进为11.25°。测得的平均损耗约为0.83 dB,测得的IP3> 65 dB。还介绍了四元素偶极子相位阵列,该阵列可以扫描高达9°,在2 GHz时测得的增益为8.6-8.3 dB。该阵列能够在不失真的情况下处理5-10 W的功率,适合基站应用。第二个项目是使用Cavendish Kinetics RF MEMS电容器的1.7-2.5 GHz非对称4极可调滤波器。 MEMS电容器采用0.18微米CMOS标准工艺制造并完全封装,具有集成的高压驱动器和SPI控制逻辑,并具有数十亿次循环的可靠性。对于8%的FBW(分数带宽),滤波器的插入损耗<3 dB,功率处理至少为25 dBm,二次谐波和三次谐波的产生为46 dBm。在25 dBm输入功率下,针对5 MHz宽带CDMA信号测得的ACPR(相邻信道功率比)至少为54 dB。该项目还讨论了对RF MEMS电容器的要求,以实现用于无线系统的高性能滤波器,以及ENIG(无电镍浸金)对谐振器品质因数和滤波器损耗的影响。接下来,实现可重构匹配网络的想法实现并研究了可调双工器。可重新配置的匹配网络确保每个滤波器的抑制带阻抗在很宽的频率范围内转换为开路,从而允许将两个可调滤波器连接在一起以形成可调双工器而不会互相影响。可调双工器是在Duroid衬底上使用肖特基二极管和梳状线谐振器构建的,可以在1.4-2.3 GHz的频率下工作,最接近110 MHz的频率间隔。测量结果表明,独立滤波器与放置在可调双工器中的滤波器之间的频率响应几乎没有差异。这项工作表明,使用可调带通滤波器和可重构匹配网络可以实现宽带可调双工器。最后,提出了一种基于双调谐射频变压器的可调双频带阻滤波器。这种设计在使用硅变容二极管的单个谐振器中产生两个不同的陷波频率。 2极可调双带带阻滤波器是使用PCB变压器和空气线圈变压器实现的。使用PCB变压器,可以将陷波电平> 16 dB的较低频率调整为513-845 MHz,而将较高频率调整为715-1151 MHz。使用空气线圈变压器,可实现具有宽抑制带宽的单频带2极陷波滤波器。该设计可实现604-982 MHz的调谐,并具有27-45 MHz的20 dB抑制带宽。同样,通过在变压器中实现串联变容二极管,可以改变两个耦合频率之间的间隔。该拓扑可以轻松扩展到高阶滤波器,并给出了设计方程。

著录项

  • 作者

    Ko, Chih-Hsiang.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Electrical engineering.;Electromagnetics.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 132 p.
  • 总页数 132
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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