标题: 设计低相位杂讯四相位震荡器与高增益降频混频器
Design of Low Phase Noise Quadrature VCO and High Gain Down Conversion Mixer
作者: 赖星翰
Lai, Hsing-Han
周复芳
Jou, Christina-F.
电信工程研究所
关键字: 四相位震荡器;混频器;高增益;Quadrature VCO;Mixer;High gain
公开日期: 2011
摘要: 本论文讨论分为两部分,其中所提出电路之晶片制作皆由TSMC 0.18 μm mixed-signal/RF CMOS 1P6M制程来实现。
  第一部分为结合电流再利用电路并利用考毕兹电容耦合产生四相位之震荡器。此四相位震荡器存有这两种电路的优点,且从模拟中可得到利用电容耦合产生四相位并不会产生额外的相位杂讯之结论。根据量测结果显示:本QVCO震荡频率为4.57~5.02 GHz,在供应电压为1.8 V之条件下,功率损耗约为8.46 mW,相位杂讯为-119 dBc/Hz @1 MHz,而figure-of-merit (FOM)则为-183.7 dBc/Hz。
  第二部分则提出低杂讯放大器运用在混频器的射频转导级的高增益混频器,这种整合型态的混频器,利用低杂讯放大器的功能,可以同时在一个混频器中达成高增益与低功率损耗的优点,并且减少面积使用以及避免多个电路整合到单一晶片时所遇到的匹配问题。第三章电路从分析混频器各个区块以达到高增益以及低杂讯,量测时,匹配的S参数14~20 GHz皆在 -10 dB以下,12~16 GHz增益频段中有18.327 dB的最高转换增益,而杂讯指数最小值13.2 dB,三阶截断点为 - 7.5 dB,而功率损耗为7.56 mW,FOM为191.42;第四章中除了包含第三章设计方法外,在射频转导级并接两个CCC CG-LNA和CS-LNA以达到宽频中也具有高增益与低杂讯,量测的S参数从4 GHz到20 GHz皆在 -8 dB之下。在2.7~17.8 GHz增益频段中只有22.7 dB的最高转换增益,而杂讯指数最小值10.45 dB,三阶截断点为 -10 dB,而功率损耗为12.058 mW,FOM为192.04。
This paper consists of two parts. All the proposed circuits were implemented in TSMC 0.18μm mixed-signal/RF CMOS 1P6M technology.
  Part I presents a Colpitts current-reused QVCO based on capacitor coupling. The proposed QVCO exists the advantages of Coltpitts and current-reused circuit. Furthermore, using capacitor coupling to generate quadrature signals doesn't make extra phase noise. According to the measured results, the oscillation frequency is 4.57~5.02 GHz, and the power consumption is about 8.46 mW at the supply voltage of 1.8 V. The phase noise at 1 MHz offset is -119 dBc/Hz and the figure-of-merit (FOM) of the proposed QVCO is about -183.7 dBc/Hz.
  Part II proposes a high gain mixer with low noise amplifier (LNA) in the RF trans-conductance stage of mixer. Using the ability of LNA, this integrated mixer can achieve high conversion gain and low power consumption in one circuit. Furthermore, it reduces the area and avoids the problem of matching that many components integrate in SOC. In chapter 3, analyzing each block of mixer achieve high conversion gain and low noise figure. During measurement, the matching s-parameter is below -10 dB in 14~20 GHz. The measured bandwidth of conversion gain ranges from 12 to 16 GHz and the maximum gain is 18.3 dB at 14 GHz. The minimum noise figure is 13.2 dB. The measured linearity shows that IIP3 is -7.5 dB. The power consumption is 7.56 mW and the FOM is 191.42;In chapter 4, including the analytic method of chapter 3, constructing cascade construction by CCC CG-LNA and CS-LNA at the RF trans-conductance stage achieves high conversion gain and low noise figure in wide band. The measured s-parameter is below -8 dB in 4~20 GHz. The measured bandwidth of conversion gain covers from 2.7 to 17.8 GHz and the maximum gain is 22.7 dB at 4 GHz and 16 GHz. The minimum noise figure is 10.45 dB. The measured linearity shows that IIP3 is -10 dB. The power consumption is 12.058 mW and the FOM is 192.04。
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT079913614
http://hdl.handle.net/11536/49387
显示于类别:Thesis


文件中的档案:

  1. 361401.pdf

If it is a zip file, please download the file and unzip it, then open index.html in a browser to view the full text content.