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Attenuation compensation in distributed amplifier design

机译:分布式放大器设计中的衰减补偿

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摘要

A high-gain common-gate FET that presents at its drain a broadband impedance characterized by a (frequency-dependent) negative resistance and a capacitance is examined theoretically and experimentally. Loading the input and/or the output lines of a distributed amplifier with this circuit reduces the signal losses, leading to an increase in the allowed number of active devices with a consequent increase in the gain-bandwidth and gain-maximum-frequency products. The cascode circuit, a related loss reduction network, is also evaluated because of its use in distributed amplifiers. Several designs employing the common-gate FET loss-compensating circuit and/or the cascode amplifying circuit are compared to a conventional distributed amplifier optimized for gain-bandwidth product. Simulated gain-maximum-operating frequency product increases of 27% to 245% over that of the optimized conventional distributed amplifier are shown. The increase in single-stage amplifier gain provided by this technique often results in (proportionally) higher maximum output power.
机译:理论上和实验上都对高增益共栅FET进行了研究,该FET在其漏极处呈现出宽带阻抗,该宽带阻抗的特征在于(取决于频率)负电阻和电容。使用此电路为分布式放大器的输入和/或输出线加载会减少信号损耗,从而导致有源设备的允许数量增加,从而导致增益带宽和增益最大频率乘积的增加。共源共栅电路,一个相关的损耗减少网络,也由于在分布式放大器中的使用而得到了评估。将采用共栅FET损耗补偿电路和/或共源共栅放大电路的几种设计与针对增益带宽乘积进行优化的传统分布式放大器进行了比较。结果显示,与优化的常规分布式放大器相比,模拟的最大增益最大工作频率乘积增加了27%至245%。这种技术提供的单级放大器增益的增加通常会导致(最大)更高的最大输出功率。

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