Su Zi-Jia, Ying Yue, Song Xiang-Xiang, Zhang Zhuo-Zhi, Zhang Qing-Hang, Cao Gang, Li Hai-Ou, Guo Guang-Can, Guo Guo-Ping
CAS Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China.
CAS Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China.
Nanotechnology. 2021 Apr 9;32(15):155203. doi: 10.1088/1361-6528/abc9ea.
Parametric amplification is widely used in nanoelectro-mechanical systems to enhance the transduced mechanical signals. Although parametric amplification has been studied in different mechanical resonator systems, the nonlinear dynamics involved receives less attention. Taking advantage of the excellent electrical and mechanical properties of graphene, we demonstrate electrical tunable parametric amplification using a doubly clamped graphene nanomechanical resonator. By applying external microwave pumping with twice the resonant frequency, we investigate parametric amplification in the nonlinear regime. We experimentally show that the extracted coefficient of the nonlinear Duffing force α and the nonlinear damping coefficient η vary as a function of external pumping power, indicating the influence of higher-order nonlinearity beyond the Duffing (∼x ) and van der Pol (∼[Formula: see text]) types in our device. Even when the higher-order nonlinearity is involved, parametric amplification still can be achieved in the nonlinear regime. The parametric gain increases and shows a tendency of saturation with increasing external pumping power. Further, the parametric gain can be electrically tuned by the gate voltage with a maximum gain of 10.2 dB achieved at the gate voltage of 19 V. Our results will benefit studies on nonlinear dynamics, especially nonlinear damping in graphene nanomechanical resonators that has been debated in the community over past decade.
参量放大在纳米机电系统中被广泛用于增强转换后的机械信号。尽管参量放大已在不同的机械谐振器系统中得到研究,但其中涉及的非线性动力学却较少受到关注。利用石墨烯优异的电学和力学性能,我们展示了使用双端夹固石墨烯纳米机械谐振器实现的电可调参量放大。通过施加频率为谐振频率两倍的外部微波泵浦,我们研究了非线性区域中的参量放大。我们通过实验表明,提取的非线性达芬力系数α和非线性阻尼系数η随外部泵浦功率而变化,这表明在我们的器件中存在超越达芬(∼x³)和范德波尔(∼[公式:见原文])类型的高阶非线性的影响。即使涉及高阶非线性,在非线性区域仍可实现参量放大。参量增益随着外部泵浦功率的增加而增大并呈现出饱和趋势。此外,参量增益可通过栅极电压进行电调谐,在19 V的栅极电压下实现了10.2 dB的最大增益。我们的结果将有助于非线性动力学的研究,特别是过去十年中该领域一直存在争议的石墨烯纳米机械谐振器中的非线性阻尼研究。