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Reducing Offset and Bias Instability in Lorentz Force Magnetic Sensors Through Bias Chopping

机译:通过偏置斩波减少Lorentz力磁传感器的偏移和偏置不稳定性

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摘要

In this paper, we describe a method for reducing offset and offset-related 1/ f (flicker) noise in micromechanical resonator-based Lorentz force magnetometers by chopping the dc bias voltage applied to the resonator. This 1/ f noise is shown to determine the stability of the sensor’s output at long averaging times. The magnetometer is operated at a 40-Hz frequency offset from its 62.88-kHz resonant frequency. At 4.6-mA bias current, the input referred noise is 70 nT/ √ Hz limited by white electronic noise. Using the proposed bias chopping method, the sensor’s offset is reduced from 310 to 15 μT , and the bias instability is reduced from 27 to 7 nT. The averaging time to reach the bias instability increases from 18 to 290 s as a result of chopping. The root cause of 1/ f noise is demonstrated to be 1/ f noise on the ac and dc bias voltages applied to the sensor. While the sensor’s readout is modulated at the 62.92-kHz excitation frequency and could therefore be expected to be free from 1/ f noise, the baseband 1/ f noise on these voltage sources is shown to be up-converted to the excitation frequency. Up-conversion occurs through the existence of fabrication imperfections that lead to mismatches in the sensing capacitances, resistances, and parasitic feedthrough capacitances of the sensor. By chopping the bias voltage, the Lorentz force signal is separated from the offset and 1/ f noise produced by these error sources. This technique is a generic method to reduce 1/ f noise and bias instability in sensors based on micromechanical resonators. [2016-0184]
机译:在本文中,我们描述了一种通过对施加到谐振器的直流偏置电压进行斩波来减少基于微机械谐振器的洛伦兹力磁力计中与偏置和偏置相关的1 / f(闪烁)噪声的方法。显示的1 / f噪声决定了长时间平均时传感器输出的稳定性。磁力计在偏离其62.88 kHz谐振频率40 Hz的频率下工作。在4.6mA偏置电流下,输入参考噪声为70 nT /√Hz,受白色电子噪声限制。使用建议的偏置斩波方法,传感器的失调从310降低到15μT,偏置不稳定性从27降低到7 nT。由于斩波,达到偏置不稳定性的平均时间从18 s增加到290 s。事实证明,1 / f噪声的根本原因是施加到传感器的交流和直流偏置电压上的1 / f噪声。虽然传感器的读数以62.92 kHz的激励频率进行调制,因此可以预期没有1 / f噪声,但是这些电压源上的基带1 / f噪声显示为上变频到激励频率。上转换是由于存在制造缺陷而导致的,这些缺陷会导致传感器的感应电容,电阻和寄生馈通电容不匹配。通过斩波偏置电压,洛伦兹力信号与这些误差源产生的偏移和1 / f噪声分离。该技术是减少基于微机械谐振器的传感器的1 / f噪声和偏置不稳定性的通用方法。 [2016-0184]

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    《Microelectromechanical Systems, Journal of》 |2017年第1期|169-178|共10页
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  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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