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Influence of cross-sectional geometry on the sensitivity and hysteresis of liquid-phase electronic pressure sensors

机译:截面几何形状对液相电子压力传感器的灵敏度和滞后的影响

摘要

Cross-sectional geometry influences the pressure-controlled conductivity of liquid-phase metalchannels embedded in an elastomer film. These soft microfluidic films may function as hyperelastic electric wiring or sensors that register the intensity of surface pressure. As pressureis applied to the elastomer, the cross-section of the embedded channel deforms, and theelectrical resistance of the channel increases. In an effort to improve sensitivity and reducesensor nonlinearity and hysteresis, we compare the electrical response of 0.25 mm2 channels with different cross-sectional geometries. We demonstrate that channels with a triangular or concave cross-section exhibit the least nonlinearity and hysteresis over pressures ranging from 0 to 70 kPa. These experimental results are in reasonable agreement with predictions made by theoretical calculations that we derive from elasticity and Ohmu27s Law.
机译:横截面几何形状影响嵌入弹性体膜中的液相金属通道的压力控制电导率。这些柔软的微流体薄膜可充当超弹性电线或记录表面压力强度的传感器。随着压力施加到弹性体上,嵌入通道的横截面变形,并且通道的电阻增加。为了提高灵敏度并减少传感器的非线性和磁滞现象,我们比较了具有不同横截面几何形状的0.25 mm2通道的电响应。我们证明,具有三角形或凹形横截面的通道在0至70 kPa的压力范围内表现出最小的非线性和滞后现象。这些实验结果与我们从弹性和欧姆定律得出的理论计算预测相吻合。

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