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DEVELOPMENT OF A CARBON NANOTUBE-BASED ELECTROMECHANICAL RESONATOR: DEVICE MODELING

机译:基于碳纳米管的机电谐振器的开发:装置建模

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We present an electromechanical analysis of a novel double-sided driven carbon nanotube-based electromechanical resonator. The device comprises a cantilevered carbon nanotube actuated by two parallel-plate electrodes. Close-form analytical solutions capable of predicting the steady-state resonation of the device and its resonant pull-in conditions are derived using an energy-based method. Our close-form formulas clearly reveal the complex relationship among the device geometry, the driving voltages, and the device's electromechanical dynamics. Our theoretical modeling shows that the stable steady-state spanning range of the resonating cantilever substantially exceeds the previously reported quasi-static pull-in limit for single-sided driven cantilevered nanotube-based NEMS, while the resonant pull-in voltage is only a small fraction of the quasi-static pull-in voltage. The unique behaviors of this novel device are expected to significantly enhance the applications of electromechanical resonators in the fields of signal processing, mass and force sensing, and chemical and molecule detection.
机译:我们提出了一种新型双面驱动碳纳米管机电谐振器的机电分析。该装置包括由两个平行板电极致动的悬臂碳纳米管。能够预测装置的稳态分析解决方案及其谐振拉伸条件的级别的分析解决方案是使用基于能量的方法来推导的。我们的封闭式公式清楚地揭示了装置几何形状,驱动电压和器件的机电动态之间的复杂关系。我们的理论建模表明,谐振悬臂的稳定稳态跨度范围大大超过了先前报道的单面驱动悬臂式纳米管NEM的准静态拉动限制,而谐振拉伸电压仅为一小部分准静态拉动电压的分数。预计这部小型设备的独特行为将显着提高机电谐振器在信号处理,质量和力传感领域的应用,以及化学和分子检测。

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