论文标题
参数状态的可调非线性阻尼
Tunable nonlinear damping in parametric regime
论文作者
论文摘要
非线性阻尼在几种物理领域起着重要作用,了解其潜在机制变得越来越重要。但是,非线性阻尼的微观起源仍然是一个有争议的主题。在这里,我们使用电子同伴致动和检测技术在高度可调的MOS2纳米机械鼓谐振器中探测和报告非线性阻尼。在我们的实验中,我们通过调整共振频率来实现2:1内部共振,并观察到增强的非线性阻尼。我们通过表征参数增益来探测非线性阻尼的效果。该设备的几何形状和可调性使我们能够降低其他突出的非线性行为的效果,从而有效探测非线性阻尼。在直接驱动器中还观察到了内部共振附近增强的非线性阻尼,这支持了非线性阻尼的可能起源。我们的实验表明,一个高度可调的基于2D材料的纳米索子为研究非线性物理学并利用参数状态中的非线性阻尼提供了出色的平台。
Nonlinear damping plays a significant role in several area of physics and it is becoming increasingly important to understand its underlying mechanism. However, microscopic origin of nonlinear damping is still a debatable topic. Here, we probe and report nonlinear damping in a highly tunable MoS2 nano mechanical drum resonator using electrical homodyne actuation and detection technique. In our experiment, we achieve 2:1 internal resonance by tuning resonance frequency and observe enhanced non-linear damping. We probe the effect of non-linear damping by characterizing parametric gain. Geometry and tunability of the device allow us to reduce the effect of other prominent Duffing non-linearity to probe the non-linear damping effectively. The enhanced non-linear damping in the vicinity of internal resonance is also observed in direct drive, supporting possible origin of non-linear damping. Our experiment demonstrates, a highly tunable 2D material based nanoresonator offers an excellent platform to study the nonlinear physics and exploit nonlinear damping in parametric regime.