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首页> 外文期刊>Applied Sciences >Molecular Dynamics Study on the Resonance Properties of a Nano Resonator Based on a Graphene Sheet with Two Types of Vacancy Defects
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Molecular Dynamics Study on the Resonance Properties of a Nano Resonator Based on a Graphene Sheet with Two Types of Vacancy Defects

机译:基于两种缺损的石墨烯片的纳米谐振器共振特性的分子动力学研究

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Due to the excellent electronic, optical, thermal, chemical, and mechanical properties of graphene, it has been applied in microdevices and nanodevices. However, there are some structural defects in graphene limiting its application in micro electromechanical systems (MEMS). These structural defects are inevitable during processing, and it is difficult to assess their effect on the microano devices. Therefore, this communication used molecular dynamics to study the resonance properties of a nanoelectromechanical systems (NMES) resonator based on a graphene sheet with a single vacancy defect and edge defects. This communication focuses on three factors: vacancy types, external force, and temperature. The resonance frequencies of both types of graphene increased with external stress loading, and the resonance frequency of the graphene showed a clear step-shaped variation. Nonlinear deformation of the sheet occurred between resonant processes. When the external force was less than 15.91 nN, the resonance frequencies of the two types of graphene showed a consistent trend. The maximum frequency was up to 132.90 GHz. When the external force was less than 90 nN, the resonance frequencies of graphene with edge defects were greater and changed more rapidly. Temperature did not have a huge influence on the resonance frequencies of either type of graphene structure. The resonance frequencies of graphene with two different vacancy defects showed a consistent trend.
机译:由于石墨烯具有优异的电子,光学,热学,化学和机械性能,它已被应用于微器件和纳米器件中。但是,石墨烯存在一些结构缺陷,限制了其在微机电系统(MEMS)中的应用。这些结构缺陷在加工过程中是不可避免的,并且很难评估它们对微/纳米器件的影响。因此,该交流使用分子动力学来研究基于具有单个空位缺陷和边缘缺陷的石墨烯片的纳米机电系统(NMES)谐振器的谐振特性。本交流重点关注三个因素:空位类型,外力和温度。两种石墨烯的共振频率都随着外部应力的增加而增加,并且石墨烯的共振频率呈现出明显的阶梯状变化。片材的非线性变形在共振过程之间发生。当外力小于15.91 nN时,两种石墨烯的共振频率呈现出一致的趋势。最大频率高达132.90 GHz。当外力小于90 nN时,带有边缘缺陷的石墨烯的共振频率更大,变化更快。温度对任何一种石墨烯结构的共振频率都没有很大的影响。具有两个空位缺陷的石墨烯的共振频率显示出一致的趋势。

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