采用纹波抑制技术的低噪声高输入阻抗斩波稳定生物电位放大器

Ankit Adesara, A. Naik
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引用次数: 0

摘要

生物电位信号是由组成神经系统的许多细胞的电化学活动产生的,它们代表了正常和病理器官的功能。这些信号必须非常小心地识别,因为当传感器检测到它们时,它们周围有大量的噪声。本文探讨了一种新型的生物电位放大器,该放大器采用斩波稳定技术来提高噪声性能并最小化偏移。然而,通过在所提出的设计中引入斩波调制器,放大器的整体输入阻抗降低,然后通过在输入支路中添加正向辅助路径将其增加到大于200 MΩ。此外,由于开关活动和上采样而产生的输出纹波,通过在操作跨导放大器(OTA)的输出端加入R-C纹波去除块而减少。所设计的结构中频段增益为40dB,功耗为9µW,偏移量为10µV, CMRR为82 dB。产生42nV/√Hz的噪声。并将所得结果与传统放大器进行了比较。采用180nm工艺参数进行了仿真验证。使用Cadence Virtuoso(原理图编辑器)、Spectre(模拟器)、Symica和Magic(布局)工具完成了所提出设计的实现和仿真。生物电位信号是由许多细胞的电化学活动产生的,必须非常小心地识别,因为当传感器检测到这些细胞时,它们被大量的噪声包围着。它探索了一种新型的生物电位放大器,该放大器采用斩波稳定技术来提高噪声性能并最小化偏置。通过在拟议的设计中引入斩波调制器,放大器的整体输入阻抗降低。在运维跨导放大器(OTA)的输出端加入R-C纹波去除块,减少了由于开关活动和上采样而产生的输出纹波。设计的结构具有40dB的中频增益,功耗为9 μ W,偏移量为10 μ V, CMRR为82 dB。产生42 nV/√Hz的噪声
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A Low Noise High Input Impedance Chopper-Stabilized Biopotential Amplifier with Ripple Reduction Technique
Biopotential signals are created as a result of the electrochemical activity of the many cells that comprise the nervous system, and they represent both normal and pathological organ function. These signals must be identified with extreme caution because they are surrounded by a great deal of noise when detected by sensors. This article explores a novel biopotential amplifier that incorporates the chopper stabilization technique to increase noise performance and minimize offset. However, by introducing the chopper modulator into the proposed design, the amplifier's overall input impedance was lowered, which was then increased to greater than 200 MΩ by adding the forward auxiliary path to the input branch. Additionally, the output ripple, produced due to switching activity and up-sampling, was reduced by inclusion of the R-C ripple removing block at the output of the operational transconductance amplifier (OTA). The designed architecture had a mid-band gain of 40dB with a power consumption of 9 µW and an offset of 10µV and a CMRR of 82 dB. It generated a noise of 42nV/√Hz. Also, the obtained results were compared with a conventional amplifier. The proposed design was verified by carrying out simulations using 180nm technology parameters. Cadence Virtuoso (Schematic editor), Spectre (Simulator), Symica and Magic (Layout) tools were used to complete the implementation and simulation of the proposed design. HIGHLIGHTS Biopotential signals are created as a result of the electrochemical activity of the many cells which must be identified with extreme caution because they are surrounded by a great deal of noise when detected by sensors It explores a novel biopotential amplifier that incorporates the chopper stabilization technique to increase noise performance and minimize offset By introducing the chopper modulator into the proposed design, the amplifier's overall input impedance was lowered, which was then increased to greater than 200 MΩ by adding the forward auxiliary path to the input branch The output ripple, produced due to switching activity and up-sampling, was reduced by inclusion of the R-C ripple removing block at the output of the operational transconductance amplifier (OTA) The designed architecture had a mid-band gain of 40dB with a power consumption of 9 µW and an offset of 10 µV and a CMRR of 82 dB. It generated a noise of 42 nV/√Hz GRAPHICAL ABSTRACT
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