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Hybrid cascode compensation with current amplifiers for nano-scale three-stage amplifiers driving heavy capacitive loads

机译:电流放大器的混合共源共栅补偿,用于驱动重型电容负载的纳米级三级放大器

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This paper presents hybrid cascode compensation with current amplifiers (HCCCA) for nano-scale area-efficient three-stage amplifiers driving ultra-large capacitive loads. The total compensation capacitor is split and placed among two high-speed feedback loops, each with a unique current amplifier. By using HCCCA, the load-dependent non-dominant poles are pushed to much higher frequencies, thereby achieving improved performance especially for heavy capacitive loads. The employed current amplifiers make it possible to significantly reduce the physical size of the compensation capacitors and to save more silicon area. The effectiveness of the proposed technique has been verified in 90-nm CMOS process, where an HCCCA amplifier prototype is designed to drive up to 10 nF load capacitor using a compensation capacitor of only 0.5 pF. It achieves a 1.0 MHz gain-bandwidth product and 0.19 V/A mu s slew-rate while consuming 80 A mu W power from a 1.2 V supply. The achieved large-signal and small-signal performance metrics are superior to those topologies reported in the literature.
机译:本文介绍了电流放大器(HCCCA)的混合共源共栅补偿,用于驱动超大电容负载的纳米级面积高效三级放大器。总补偿电容器被分割并放置在两个高速反馈环路之间,每个环路都有一个独特的电流放大器。通过使用HCCCA,依赖于负载的非主导极点被推到更高的频率,从而实现了改进的性能,尤其是对于高容性负载。所采用的电流放大器使得可以显着减小补偿电容器的物理尺寸并节省更多的硅面积。该提议技术的有效性已在90nm CMOS工艺中得到了验证,在该工艺中,HCCCA放大器原型设计为使用仅0.5 pF的补偿电容器来驱动高达10 nF的负载电容器。它实现了1.0 MHz的增益带宽乘积和0.19 V / A的摆率,同时通过1.2 V电源消耗了80 AμW的功率。所实现的大信号和小信号性能指标优于文献中报道的拓扑。

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