应变调制多铁磁传感器的低功耗电路接口

Yujia Huo;Sydney Sofronici;Michael J. D’Agati;Roy H. Olsson
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引用次数: 0

摘要

生物磁场的记录和分析在医学研究和诊断中有着广泛的应用。可穿戴式磁场传感器为感应生物电位提供了一种非接触和便携的方法。本文介绍了一种用于应变调制多铁性矢量磁场传感器的180nm CMOS读出电路。通过利用解调器优先架构,电路带宽和动态范围要求大大降低,允许5.9 mW的低功耗。电路带宽从76 mHz到2.2 kHz,允许在生物磁信号感兴趣的范围内测量。利用调制降噪技术,传感器系统的噪声性能得到显著改善,传感器的调制幅度可以增加,从而提高传感器的灵敏度。对传感器读出系统的测量表明,在1khz时,磁底噪声为144pt / $ $ $ Hz。噪声和功耗明显低于同类体积的磁传感器系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low Power Circuit Interfaces for Strain Modulated Multiferroic Biomagnetic Sensors
The recording and analysis of biomagnetic fields have widespread applications in medical research and diagnostics. Wearable magnetic field sensors offer a noncontact and portable method for sensing biopotentials. This article presents a readout circuit in 180-nm CMOS for strain-modulated multiferroic vector magnetic field sensors. By utilizing a demodulator-first architecture, the circuit bandwidth and dynamic range requirements are greatly reduced allowing for a low power consumption of 5.9 mW. The circuit bandwidth is from 76 mHz to 2.2 kHz, allowing for measurement across the range of interest for biomagnetic signals. Utilizing a modulation noise cancellation technique, the noise performance of the sensor system is significantly improved, and the sensor modulation amplitude can be increased, resulting in improved sensor sensitivity. Measurements for the sensor-readout system demonstrate a 144 pT/ $\surd $ Hz magnetic noise floor at 1 kHz. The noise and power consumption are significantly lower than alternative magnetic sensor systems of similar volume.
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