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Optimal in situ electromechanical sensing of molecular species

机译:分子物种原位机电感应

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We investigate protocols for optimal molecular detection with electromechanical nanoscale sensors under ambient conditions. Our models are representative of suspended graphene nanoribbons, which due to their piezoelectric and electronic properties provide responsive and versatile sensors. In particular, we analytically account for the corrections in the electronic transmission function and signal-to-noise ratio originating in environmental perturbations, such as thermal fluctuations and solvation effects. We also investigate the role of the sampling time in the current statistics. As a result, we formulate a protocol for optimal sensing based on the modulation of the Fermi level at a fixed bias and provide approximate forms for the current, linear susceptibility, and current fluctuations. We show how the algebraic tails in the thermally broadened transmission function affect the behavior of the signal-to-noise ratio and optimal sensing. These results provide further insights into the operation of graphene deflectometers and other techniques for electromechanical sensing.
机译:我们在环境条件下调查用机电纳米级传感器进行最佳分子检测的方案。我们的型号代表悬浮的石墨烯纳米波堡,其由于它们的压电和电子特性提供响应和通用的传感器。特别地,我们分析了源自环境扰动的电子传输功能和信噪比的校正,例如热波动和溶剂化效应。我们还调查采样时间在当前统计数据中的作用。结果,我们根据固定偏压的FERMI水平的调制,制定用于最佳感测的协议,并提供用于电流,线性敏感性和电流波动的近似形式。我们展示了原料尾部在热扩大的传动功能中如何影响信噪比和最佳感测的行为。这些结果提供了进一步的见解,进一步了解石墨烯偏转器的操作和用于机电感测的其他技术。

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