Role of the Casimir force in micro- and nanoelectromechanical pressure sensors

G. L. Klimchitskaya, Alexander S. Korotkov, Vera V. Loboda, V. Mostepanenko
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Abstract

The Casimir force caused by the electromagnetic fluctuations is computed in the configurations of micro- and nanoelectromechanical pressure sensors using Si membranes and either Si or Au-coated Si substrates. It is shown that if, under the influence of external pressure, the membrane-substrate separation drops to below 100 nm, the Casimir force makes a profound effect on the sensor functioning. There exists the maximum value of external pressure depending on the sensor parameters such that it finds itself in a state of unstable equilibrium. For this and larger pressures, the Casimir force leads to a collapse of the sensor, which loses its functionality. For any smaller external pressures, there exist two equilibrium positions, one of which is unstable and another one is stable, at smaller and larger membrane-substrate separations, respectively. The latter can be safely used for the pressure measurements. Possible applications of the ontained results in the design of micro and nano pressure sensors of next generations with further decreased dimensions are discussed.
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卡西米尔力在微型和纳米机电压力传感器中的作用
在使用硅膜和硅或金涂层硅基底的微米和纳米机电压力传感器配置中,计算了电磁波动引起的卡西米尔力。结果表明,如果在外部压力的影响下,膜与基底的分离度降至 100 nm 以下,卡西米尔力就会对传感器的功能产生深远影响。外部压力的最大值取决于传感器的参数,因此传感器会处于不稳定的平衡状态。对于这个值和更大的压力,卡西米尔力会导致传感器崩溃,从而失去其功能。对于任何较小的外部压力,都存在两个平衡位置,一个是不稳定的,另一个是稳定的,分别处于较小和较大的膜基分离状态。后者可以安全地用于压力测量。我们还讨论了将所获成果应用于设计尺寸进一步缩小的下一代微型和纳米压力传感器的可能性。
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