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Sensitivity and Noise Evaluation of a Bonded Magneto(elasto) Electric Laminated Sensor Based on In-Plane Magnetocapacitance Effect for Quasi-Static Magnetic Field Sensing

机译:基于面内磁电容效应的准静态磁场感应粘结磁(弹)电叠层传感器的灵敏度和噪声评估

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The quasi-static magnetic field detection of a layer-bonded magneto(elasto) electric (ME) laminate has been investigated by measuring the in-plane electric capacitance via its interdigital electrodes close to the piezoelectric resonant frequency. The ME-layered composite is considered as a stress-induced dielectric effect because there is practically no direct response of the electric capacitance to an external magnetic field. The sensitivity is dominated by the magnetoelastic coupling in the magnetic layer and on the stress induced by the permittivity change in the piezoelectric layer. The low-frequency magnetocapacitance effect is sensitive to an external magnetic bias which can modulate the electric permittivity by producing a stress. The magnetoelastic coupling is another important parameter for this magnetic field detection mode. For a given magnetic field, the amplitude of the magnetostriction is directly related to this parameter as well. Therefore, an optimal magnetic bias can maximize the induced strain or stress which is coupled into the piezoelectric layer through the change of the electric permittivity in this layer. To evaluate the sensitivity and the noise performance by the magnetocapacitance effect, we have used the piezoelectric and magnetic constitutive equations to predict the permittivity dependence. Experimentally, this sensor achieved an equivalent magnetic noise spectral density, presently still limited, by the noise of the detection electronics, pT/Hz at 1 Hz and offered a dc detection capability. With the model and experimental nonlinear factors, an equivalent sensor noise spectral density close to the pT/Hz can be ultimately predicted considering the mechanical loss limitation of the sensor.
机译:已经通过经由靠近压电谐振频率的叉指电极测量面内电容来研究层结合的磁(弹)电(ME)层压板的准静态磁场检测。由于几乎没有电容对外部磁场的直接响应,因此将ME层复合材料视为应力引起的介电效应。灵敏度由磁性层中的磁弹性耦合以及由压电层中的介电常数变化引起的应力决定。低频磁电容效应对外部磁偏置很敏感,外部磁偏置可以通过产生应力来调节介电常数。磁弹性耦合是该磁场检测模式的另一个重要参数。对于给定的磁场,磁致伸缩的幅度也直接与此参数相关。因此,最佳的磁偏置可以使通过改变该层中的介电常数而耦合到压电层中的感应应变或应力最大化。为了通过磁电容效应评估灵敏度和噪声性能,我们使用了压电和磁本构方程来预测介电常数依赖性。实验上,该传感器获得了等效的电磁噪声频谱密度,目前仍受检测电子设备的噪声(1 Hz的pT / Hz)的限制,并具有直流检测能力。利用模型和实验非线性因素,考虑到传感器的机械损耗限制,可以最终预测出接近pT / Hz的等效传感器噪声频谱密度。

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