Effect of Bulk Acoustic Wave in Piezo Driven Nanomechanical Motion

S. Roy, W. Hiebert
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Abstract

Piezo actuation of mechanical resonators is widely adapted because of its simplicity and versatility. Piezo-driven atomic force microscopy cantilevers in air or liquid have a substantial drawback in that they produce spurious resonances that conceal the cantilever resonance peak. Bulk acoustic wave propagation via the piezo-shaker and device substrate causes these undesired peaks. Such restrictions of piezo actuation are rarely reported in nanomechanical resonant sensing. Because most NEMS (nanoelectromechanical systems) experiments are carried out at low pressure to achieve a higher quality factor ) and hence increased sensitivity, spurious resonances are frequently overlooked due to their insignificance. However, this piezo-driven issue may affect NEMS responses at higher pressures (lower Q) and must be addressed carefully. This study reveals spurious resonances from high vacuum to the atmosphere while investigating piezo-driven nanoscale doubly clamped beam responses. At all pressures, spurious peaks with a characteristic frequency span independent of air damping exist, and at higher pressures, they squeeze the mechanical peak. Such squeezing provides a larger  derived from the driven phase responses by order of magnitude than the mechanical  computed from the measured thermal noise spectra. Interestingly, the characteristic frequency span, not air damping, is revealed to dominate driven .
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体声波对压电驱动纳米机械运动的影响
压电致动机械谐振器因其简单、通用性强而得到广泛应用。压电驱动的原子力显微镜在空气或液体中的悬臂梁有一个很大的缺点,即它们产生虚假的共振,掩盖了悬臂梁的共振峰。体声波通过压电激振器和器件衬底的传播会导致这些不期望的峰值。压电驱动的这种限制在纳米机械共振传感中很少被报道。由于大多数NEMS(纳米机电系统)实验是在低压下进行的,以获得更高的质量因子,从而提高了灵敏度,因此由于其不重要,虚假共振经常被忽视。然而,这个压电驱动的问题可能会影响NEMS在较高压力(较低Q)下的响应,必须仔细解决。本研究揭示了从高真空到大气的伪共振,同时研究了压电驱动的纳米级双箝位光束响应。在所有压力下,存在具有独立于空气阻尼的特征频率跨度的虚假峰值,并且在更高的压力下,它们挤压机械峰值。这种压缩提供了一个更大的衍生从驱动相响应的数量级比机械计算从测量的热噪声谱。有趣的是,特征频率跨度,而不是空气阻尼,显示主导驱动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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审稿时长
16 weeks
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