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High linearity 1.5-2.5 GHz RF-MEMS and varactor diodes based tunable filters for wireless applications.

机译:高线性度1.5-2.5 GHz RF-MEMS和基于变容二极管的可调谐滤波器,用于无线应用。

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摘要

The dissertation presents tunable banpass filters in the 1.5-2.5 GHz frequency range targeted for wireless applications. The tunable filters are designed for size miniaturization, good linearity and constant absolute bandwidth characteristics while maintaining low insertion loss. The improved linearity has been demonstrated using back-to-back varactor diodes and using RF MEMS devices. The constant absolute bandwidth characteristics was achieved using a novel corrugatedcoupled lines approach and also using a localized capacitive compensation concept. In the improved linearity varactor diode design, two miniaturized tunable filters with two zeros were developed at 1.4-2.0 GHz on. The filters were built using single and back-to-back varactor diodes and compared for linearity characteristics. The single diode filter has a 1-dB bandwidth of 5 +/- 0.5% and an insertion loss of 2.5-1.8 dB. The back-to-back diode filter has a 1-dB bandwidth of 4.9 +/- 0.5% and an insertion loss of 2.9-1.25 dB (resonator Q of 56-125). A detailed Volterra series analysis is done on the back-to-back diode including the effect of the bias network and diode mismatches. The measured IIP 3 for the back-to-back diode tunable filter is 22-41 dBm depending on the bias voltage and is 13-15 dB better than the single diode design. The power handling capabilities of both designs is explored using large signal S21 measurements. To our knowledge, these planar tunable filters represent state-of-the-art insertion loss and linearity characteristics performance with varactor diodes as the tuning elements.;In the corrugated coupled-lines design, miniaturized fixed and tunable microstrip bandpass filters were developed t 1.4-1.9 GHz. The novel approach uses microstrip corrugated coupled-lines concept to synthesize a coupling coefficient which maintains a nearly constant absolute bandwidth across the tuning range. In addition, a miniaturized 2-pole varactor tuned filter is demonstrated with a frequency coverage of 1.44-1.89 GHz and an insertion loss 2.92 dB with a constant 1-dB bandwidth of 70+/-4 MHz across the tuning range. In addition, a 3-pole combline 4.7% fixed filter at 1.94 GHz shows a 3:1 resonator spacing reduction over the conventional approach, with an insertion loss of only 1.1 dB. This technique will allow the design of miniaturized small bandwidth fixed and tunable microstrip filters.;In the localized capacitive compensation design, the approach was used to design 3-poles combline tunable filter with an electrical length of 42° at the mid band. The frequency coverage of the tunable filter is 1.4-2.2 GHz with a 1-dB bandwidth of 157+/-7 MHz across the tuning range. Detailed design equation as well as the design procedure were presented.;In order to get substantial improvement in linearity and achieve a high resonator Q, high Q RF MEMS devices are used to demonstrate tunable filters with constant absolute bandwidth for the 1.5-2.5 GHz wireless band. The filter design is based on corrugated coupled-lines and ceramic substrates (epsilonr = 9.9) for miniaturization, and the 3-bit tuning network is fabricated using a digital/analog RF MEMS device so as to provide a large capacitance ratio and continuous frequency coverage. Narrowband (72+/-3 MHz) and wideband (115+/-10 MHz) two-pole filters result in a measured insertion loss of 1.9-2.2 dB at 1.5-2.5 GHz, with a power handling of 25 dBm and an IIP3 33 dBm. The filters also showed no distortion when tested under wideband CDMA waveforms up to 24.8 dBm. The designs can be scaled to higher dielectric-constant substrates to result in even smaller filters.
机译:本文提出了针对无线应用的1.5-2.5 GHz频率范围内的可调禁带滤波器。可调滤波器设计用于尺寸最小化,良好的线性度和恒定的绝对带宽特性,同时保持较低的插入损耗。使用背靠背变容二极管和RF MEMS器件已证明了改善的线性度。恒定的绝对带宽特性是使用新颖的波纹耦合线方法以及局部电容补偿概念实现的。在改进的线性变容二极管设计中,在1.4-2.0 GHz上开发了两个带有两个零的小型可调滤波器。滤波器是使用单个和背对背变容二极管构建的,并比较了线性特性。单二极管滤波器的1 dB带宽为5 +/- 0.5%,插入损耗为2.5-1.8 dB。背靠背二极管滤波器的1 dB带宽为4.9 +/- 0.5%,插入损耗为2.9-1.25 dB(谐振器Q为56-125)。在背对背二极管上进行了详细的Volterra级数分析,包括偏置网络和二极管失配的影响。对于背靠背二极管可调滤波器,测得的IIP 3为22-41 dBm(取决于偏置电压),比单二极管设计好13-15 dB。使用大信号S21测量来探索两种设计的功率处理能力。据我们所知,这些平面可调滤波器以变容二极管为调谐元件,代表了最新的插入损耗和线性特性。在波纹耦合线设计中,开发了微型固定和可调微带通滤波器t 1.4 -1.9 GHz。新颖的方法使用微带波纹耦合线概念来合成耦合系数,该系数在整个调谐范围内保持几乎恒定的绝对带宽。此外,还展示了一种小型2极变容二极管调谐滤波器,其频率覆盖范围为1.44-1.89 GHz,插入损耗<2.92 dB,在整个调谐范围内具有恒定的1-dB带宽70 +/- 4 MHz。此外,与传统方法相比,在1.94 GHz频率下的3极梳状线4.7%固定滤波器显示出3:1的谐振器间距减小,插入损耗仅为1.1 dB。该技术将允许设计小型化的小带宽固定和可调微带滤波器。在局部电容补偿设计中,该方法用于设计中频带电长度为42°的三极梳状可调滤波器。可调滤波器的频率范围为1.4-2.2 GHz,在整个调谐范围内具有1-dB的带宽157 +/- 7 MHz。提出了详细的设计方程式和设计步骤。为了使线性度得到实质性的改善并实现高谐振器Q,高Q RF MEMS器件被用于演示1.5-2.5 GHz无线网络中具有恒定绝对带宽的可调滤波器。带。滤波器设计基于波纹耦合线和陶瓷基板(epsilonr = 9.9)以实现小型化,并使用数字/模拟RF MEMS器件制造3位调谐网络,以提供较大的电容比和连续的频率覆盖范围。窄带(72 +/- 3 MHz)和宽带(115 +/- 10 MHz)两极滤波器在1.5-2.5 GHz时测得的插入损耗为1.9-2.2 dB,功率处理为25 dBm,IIP3 33 dBm。在高达24.8 dBm的宽带CDMA波形下进行测试时,这些滤波器也没有显示出失真。可以将设计缩放到更高介电常数的基板,以形成更小的滤波器。

著录项

  • 作者

    El-Tanani, Mohammed Ahmed.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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