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A Low-Noise Biopotential Amplifier with an Optimized Noise Efficiency Factor

机译:具有优化噪声效率因子的低噪声生物电势放大器

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Implantable wireless neural recording microsystems have demonstrated their efficacies in neuroscience studies in the past decades. However, with the advances of neurobiology, higher sensitivity and higher precision neural recording microsystems are becoming the critical need. A biopotential amplifier is the first stage of a neural recording microsystem, the performance of which decides the signal-to-noise ratio and the power dissipation of each recording-channel. In this paper, we present a low-noise biopotential amplifier with a noise efficiency factor (NEF) optimized closer to the theoretical limit of a folded cascode structure. A high transconductance input nMOSFET pair is designed to guarantee a low input-referred noise. A self-biased scheme comprising a weak positive feedback and a strong negative feedback is employed to further enhance the transconductance. By optimizing the noise performance while maintaining the NEF value close to the theoretical limit, a very low input-referred noise and a higher power-noise efficiency are achieved in our design. Using a standard 0.13-mu m CMOS process, the proposed amplifier achieves an input-referred noise of 1.98 mu V-rms at the expense of 7.5 mu W power, corresponding to a NEF of 2.31. The gain of the proposed amplifier is 40.84 dB at a -3dB bandwidth from 6.65 Hz to 9.38 kHz.
机译:在过去的几十年中,可植入的无线神经记录微系统已在神经科学研究中证明了其功效。然而,随着神经生物学的进步,越来越高的灵敏度和精度的神经记录微系统正变得至关重要。生物电势放大器是神经记录微系统的第一阶段,其性能决定了每个记录通道的信噪比和功耗。在本文中,我们提出了一种低噪声生物电势放大器,其噪声效率因子(NEF)的优化接近折叠共源共栅结构的理论极限。高跨导输入nMOSFET对旨在确保低输入参考噪声。采用包括弱正反馈和强负反馈的自偏置方案可进一步增强跨导。通过在保持NEF值接近理论极限的同时优化噪声性能,可以在我们的设计中实现非常低的输入参考噪声和更高的功率噪声效率。使用标准的0.13μmCMOS工艺,拟议的放大器以7.5μW的功率实现了1.98μV-rms的输入参考噪声,相当于2.31的NEF。所建议放大器的增益在6.65 Hz至9.38 kHz的-3dB带宽下为40.84 dB。

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