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23.7 A 130dB CMRR Instrumentation Amplifier with Common-Mode Replication

机译:23.7具有共模复制的130dB CMRR仪表放大器

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Interfacing with high-impedance sensors, such as dry-contacted electrodes and accelerometers requires high CMRR with sufficient input impedance concurrently. From the system point of view, the total CMRR (TCMRR) is determined by the intrinsic CMRR (ICMRR) of the front-end amplifier as well as the imbalance of source impedance; the latter has to be accommodated by large input common-mode (CM) impedance (ZIN, CM). Widely adopted CMRR enhancement techniques, i.e., chopping, common-mode feedback (CMFB), common-mode feedforward, improve ICMRR only [1]–[3]. Positive feedback improves the input differential-mode (DM) impedance (ZIN, DM) effectively [4]. However, it is the input CM impedance that contributes to the TCMRR, which has not been commonly noted. Single-ended amplifiers, e.g., active electrodes (AE) [3], [5], and traditional 3-opamp instrumentation amplifiers do not suffer from the confusion, where the ZIN, CM and ZIN, DM are inherently the same and are enhanced by the same mechanism for higher TCMRR. On the other hand, dedicated single-ended stages require extra design effort as well as power consumption. Pre-charge techniques improve ZIN, CM and ZIN, DM concurrently at low frequencies by employing two additional chopped buffers [6]. Power-supply regulation enhances both CMRR and (ZIN, CM). However, feedback regulation of the power supply is often sophisticated and power-consuming [7].
机译:与高阻抗传感器(例如,干式接触电极和加速度计)的接口要求同时具有足够输入阻抗的高CMRR。从系统的角度来看,总CMRR(TCMRR)由前端放大器的固有CMRR(ICMRR)以及源阻抗的不平衡决定;后者必须由较大的输入共模(CM)阻抗(Z IN , 厘米)。广泛采用的CMRR增强技术,即斩波,共模反馈(CMFB),共模前馈,仅能改善ICMRR [1] – [3]。正反馈可改善输入差模(DM)阻抗(Z IN ,DM)有效[4]。但是,输入CM阻抗是TCMRR的主要贡献,这一点并未引起人们的普遍关注。单端放大器,例如有源电极(AE)[3],[5]和传统的3运放仪表放大器,不会遭受混淆,因为Z IN ,CM和Z IN DM本质上是相同的,并且通过相同的机制进行了增强,以实现更高的TCMRR。另一方面,专用的单端级需要额外的设计工作以及功耗。预充电技术可改善Z IN ,CM和Z IN ,DM通过使用两个额外的斩波缓冲区在低频下并发[6]。电源调节可增强CMRR和(Z IN , 厘米)。然而,电源的反馈调节通常是复杂且耗电的[7]。

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