首页> 外文期刊>Journal of circuits, systems and computers >A Technique to Determine the Designable Inductance Value(s) in Wide-Band CMOS-Amplifier System Employing Shunt-Peaking
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A Technique to Determine the Designable Inductance Value(s) in Wide-Band CMOS-Amplifier System Employing Shunt-Peaking

机译:确定采用分流峰值的宽带CMOS放大器系统中可设计电感值的技术

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This paper presents a technique towards obtaining an estimate of the value of inductor(s) to expand the bandwidth of operation in a complementary metal-oxide semiconductor (CMOS) amplifier system which exploits shunt peaking principle. The basic principle is placement of the zeros of the transfer function in an interleaved manner relative to the uncompensated RC timeconstant frequency (TCF) and the band-edge frequency (BEF) (i.e., product of the poles) of the transfer function. Application of the analytical results has been demonstrated for (i) a commongate (CG) amplifier stage in a 0.18-mu m CMOS process and (ii) an inter-stage inductor coupling network which serves as an interface between two amplifier stages. MATLAB simulation has been used to obtain the range of design inductance values. The TSMC 180-nm CMOS process has been used in Cadence CAD environment to validate the theoretical predictions. The inductors laid out have been modeled using the ASITIC program to obtain more realistic results. The proposed technique provides a bandwidth extension of the CMOS common-gate amplifier from 6.68 GHz to 10.4 GHz with 1 dB peaking using only a 1.85-nH inductor. For the inter-stage coupling network, the suggested design procedure leads to a bandwidth extension ratio (BWER) exceeding three, with less than 3-dB ripple.
机译:本文提出了一种技术,该技术旨在获得电感值的估计值,以扩展利用并联峰值原理的互补金属氧化物半导体(CMOS)放大器系统的工作带宽。基本原理是传递函数的零点相对于传递函数的未补偿RC时间常数频率(TCF)和带边缘频率(BEF)(即极的乘积)以交错方式放置。分析结果的应用已针对(i)0.18微米CMOS工艺中的共栅(CG)放大器级和(ii)用作两个放大器级之间接口的级间电感耦合网络进行了演示。 MATLAB仿真已用于获得设计电感值的范围。在Cadence CAD环境中已使用TSMC 180 nm CMOS工艺来验证理论预测。布局的电感器已使用ASITIC程序建模以获得更真实的结果。所提出的技术仅使用1.85 nH电感器就可以将CMOS共栅放大器的带宽从6.68 GHz扩展到10.4 GHz,并具有1 dB的峰值。对于级间耦合网络,建议的设计程序会导致带宽扩展比(BWER)超过3,且波纹小于3 dB。

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