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首页> 外文期刊>IEEE Journal of Solid-State Circuits >A 2 $muhbox{W}$ 100 nV/rtHz Chopper-Stabilized Instrumentation Amplifier for Chronic Measurement of Neural Field Potentials
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A 2 $muhbox{W}$ 100 nV/rtHz Chopper-Stabilized Instrumentation Amplifier for Chronic Measurement of Neural Field Potentials

机译:用于长期测量神经电势的2 $ muhbox {W} $ 100 nV / rtHz稳定斩波仪表放大器

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摘要

This paper describes a prototype micropower instrumentation amplifier intended for chronic sensing of neural field potentials (NFPs). NFPs represent the ensemble activity of thousands of neurons and code-useful information for both normal activity and disease states. NFPs are small—of the order of tens of $muhbox{V}$—and reside at low bandwidths that make them susceptible to excess noise. Therefore, to ensure the highest fidelity of signal measurement for diagnostic analysis, the amplifier is chopper-stabilized to eliminate $1/f$ and popcorn noise. The circuit was prototyped in an 0.8 $mu{hbox {m}}$ CMOS process and consumes under 2.0 $muhbox{W}$ from a 1.8 V supply. A noise floor of 0.98 $mu{hbox{Vrms}}$ was achieved over a bandwidth from 0.05 to 100 Hz; the noise-efficiency factor of 4.6 is one of the lowest published to date. A flexible on-chip high-pass filter is used to suppress front-end electrode offsets while maintaining relevant physiological data. The monolithic architect and micropower low-noise low-supply operation could help enable applications ranging from neuroprosthetics to seizure monitors that require a small form factor and battery operation. Although the focus of this paper is on neurophysiological sensing, the circuit architecture can be applied generally to micropower sensor interfaces that benefit from chopper stabilization.
机译:本文描述了一种原型微功率仪表放大器,旨在对神经场电势(NFP)进行慢性感应。 NFP代表成千上万的神经元的整体活动,以及正常活动和疾病状态的代码有用信息。 NFP很小-大约几十个$ muhbox {V} $-并且驻留在低带宽下,使它们容易受到多余噪声的影响。因此,为了确保用于诊断分析的信号测量的最高保真度,该放大器经过斩波稳定,以消除1 / f $和爆米花噪声。该电路的原型是采用0.8μm的CMOS工艺制成的,并且从1.8V电源消耗的电流低于2.0μm的功耗。在0.05到100 Hz的带宽上,本底噪声为0.98 $ mu {hbox {Vrms}} $。 4.6的噪声效率系数是迄今为止发布的最低的系数之一。灵活的片上高通滤波器用于抑制前端电极偏移,同时保持相关的生理数据。单片架构师和微功耗低噪声低电源操作可以帮助实现从神经假体到癫痫发作监测仪等各种需要小尺寸和电池供电的应用。尽管本文的重点是神经生理感应,但该电路体系结构通常可应用于受益于斩波器稳定化的微功率传感器接口。

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