论文标题
滑动纳米力学谐振器
Sliding nanomechanical resonators
论文作者
论文摘要
振动对象的运动取决于其保持方式。这个简单的观察结果长期以来启发了弦乐器制造商,可以通过设计优雅的弦夹机制来创建新的声音,从而随着字符串振动而调制夹紧点之间的距离。在纳米级,模拟该原理的最简单方法是使纳米棒子在夹紧点上滑动,这将有效地调节其振动长度。在这里,我们报告了纳米力学谐振器中弯曲振动的测量,这些谐振器揭示了这种滑动运动。令人惊讶的是,随着调音门电压的循环,振动的谐振频率绘制了循环。这种行为表明滑动伴随着谐振器的延迟频率响应,使它们的动力学比具有固定夹紧点的谐振器更丰富。我们的工作阐明了具有非常规边界条件的纳米力学谐振器的动力学,并提供了从谐振频率测量中研究纳米级摩擦的机会。
The motion of a vibrating object is determined by the way it is held. This simple observation has long inspired string instrument makers to create new sounds by devising elegant string clamping mechanisms, whereby the distance between the clamping points is modulated as the string vibrates. At the nanoscale, the simplest way to emulate this principle would be to controllably make nanoresonators slide across their clamping points, which would effectively modulate their vibrating length. Here, we report measurements of flexural vibrations in nanomechanical resonators that reveal such a sliding motion. Surprisingly, the resonant frequency of vibrations draws a loop as a tuning gate voltage is cycled. This behavior indicates that sliding is accompanied by a delayed frequency response of the resonators, making their dynamics richer than that of resonators with fixed clamping points. Our work elucidates the dynamics of nanomechanical resonators with unconventional boundary conditions, and offers opportunities for studying friction at the nanoscale from resonant frequency measurements.