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Electromechanical coupling effect in the detection of nanomechanical motion

机译:纳米力学运动检测的机电耦合效应

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摘要

The electromechanical coupling in the nanomechanical detection experiment is important as people forever pursue the higher sensitivity. In this work, we have studied theoretically the electromechanical coupling effect on the sensitivity of nanomechanical motion with the mixing current detection method under monostable and bistable regime, respectively. To obtain the sensitivity, the response function, the shot noise and the backaction noise with the coupling in the nanomechanical system consists of the oscillator coupled to a quantum dot are present. It is found that for the monostable state, the higher coupling means higher sensitivity. Both the contributions of shot noise and the backaction noise to the sensitivity are the decreasing function of the coupling. Once the system enters the bistability regime, the telegraph noise dominates instead of the resonance frequency noise, that due to the electron hopping in the bistable regime contributes more noise for the detection, its value is 3 orders of magnitude larger than the contribution of shot noise. As a result, one could find that there is a optimal value of the coupling corresponding to the phase transition point where the sensitivity is the best. Our results provide the pioneer and useful approach for the detection experiment. Graphic abstract
机译:随着人们不断追求更高的灵敏度,机电耦合在纳米机械检测实验中显得尤为重要。在这项工作中,我们从理论上研究了单稳态和双稳态下,机电耦合对纳米机械运动灵敏度的影响。为了获得灵敏度,给出了由耦合到量子点的振荡器组成的纳米机械系统的响应函数、散粒噪声和反作用噪声。研究发现,对于单稳态,耦合度越高,灵敏度越高。散粒噪声和反作用噪声对灵敏度的贡献都是耦合的递减函数。一旦系统进入双稳区,电报噪声而不是共振频率噪声占主导地位,由于双稳区中的电子跳跃为探测贡献了更多的噪声,其值比散粒噪声的贡献大3个数量级。因此,我们可以发现,在灵敏度最好的相变点对应的耦合存在一个最佳值。我们的结果为探测实验提供了开拓性和有用的方法。图形摘要

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