Luo Wenyao, Gao Naikun, Liu Duo
Institute of Novel Semiconductors, State Key Laboratory of Crystal Materials, Shandong University, 27 South Shanda Road, Jinan, Shandong 250100, People's Republic of China.
Jinan Institute of Quantum Technology, Jinan, Shandong 250101, People's Republic of China.
Nano Lett. 2021 Jan 27;21(2):1062-1067. doi: 10.1021/acs.nanolett.0c04301. Epub 2021 Jan 14.
Coupled resonators represent a generic model for many physical systems. In this context, a microcantilever is a multimode resonator clamped at one end, and it finds extensive application in high-precision metrology and is expected to be of great potential use in emerging quantum technologies. Here, we explore the microcantilever as a flexible platform for realizing multimode nonlinear interactions. Multimode nonlinear coupling is achieved by (1:2) internal resonance (IR) and parametric excitation with efficient coherent energy transfer. Specifically, we demonstrate abundant tunable parametric behaviors via frequency and voltage sweeps; these behaviors include mode veering, degenerate four-wave mixing (D4WM) with satellite resonances, partial amplitude suppression, acoustic frequency comb (AFC) generation, mechanically induced transparency (MIT), and normal-mode splitting. The experiments depict a new scheme for manipulating multimode microresonators with IR and parametric excitation.
耦合谐振器是许多物理系统的通用模型。在此背景下,微悬臂梁是一种一端固定的多模谐振器,它在高精度计量学中有着广泛应用,并且有望在新兴量子技术中发挥巨大潜在作用。在此,我们将微悬臂梁作为实现多模非线性相互作用的灵活平台进行探索。多模非线性耦合是通过(1:2)内共振(IR)和具有高效相干能量转移的参量激励来实现的。具体而言,我们通过频率和电压扫描展示了丰富的可调参量行为;这些行为包括模式转向、带有卫星共振的简并四波混频(D4WM)、部分振幅抑制、声频梳(AFC)产生、机械诱导透明(MIT)以及简正模式分裂。这些实验描绘了一种利用IR和参量激励来操纵多模微谐振器的新方案。