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Mathematical modelling of phononic nanoplate and its size-dependent dispersion and topological properties

机译:声子纳米板的数学建模及其尺寸依赖性分散和拓扑特性

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摘要

A new model with analysis for the propagation of flexural waves in a phononic plate at nanoscale is developed. The Gurtin-Murdoch theory for surface elasticity is adopted to model the surface heterogeneity. The Mindlin (or first-order) plate theory is further generalized to establish the governing equations for flexural waves in a phononic plate with surface effect, for which the plane wave expansion method is applied to derive the dispersion relation. A numerical model is developed using the finite element method and very good consistency between theory and numerical solution is observed. It is found that the surface density and the surface residual stress play the main role that affects the band structures. The surface effect can be approximately regarded as the competition between frequency decrease due to surface density and frequency increase caused by surface residual stress, which effectively increases the low-frequency bands but decreases the high-frequency bands. The quantum spin Hall effect is observed in the phononic plate at nanoscale, and the surface effect is studied numerically. By applying the k.p perturbation method, a theoretical framework is established to calculate the spin Chern number, which is an important topological invariant that determines the quantum spin Hall effect. Based on the topological analysis, an efficient waveguide with a zig-zag path is designed, in which a topologically protected wave in the interface state can robustly propagate along the path against disorders. The theory and numerical study developed in this paper will help better understand the size-dependent quantum spin Hall effect in nanostructures and it may also provide guidance for the design of topological wave devices at nanoscale.
机译:开发了一种新模型,具有分析纳米级呼吸板中的弯曲波传播。采用Gurtin-Murdoch用于表面弹性的理论来模拟表面异质性。 Mindlin(或一阶)板理论进一步推广以建立具有表面效应的声板中的弯曲波的控制方程,其施加平面波扩展方法来得出分散关系。使用有限元方法开发了数值模型,观察了理论与数值解决方案之间的非常好的一致性。发现表面密度和表面残余应力起到影响带结构的主要作用。由于由表面残余应力引起的表面密度和频率增加,表面效应可以大致被认为是频率减小之间的竞争,这有效地增加了低频带但减小了高频带。在纳米级的帖子板中观察量子旋转霍尔效果,并且在数值上进行表面效果。通过应用K.P扰动方法,建立理论框架以计算旋转切除号,这是一个重要的拓扑不变,确定量子旋转霍尔效应。基于拓扑分析,设计了具有Zig-ZAG路径的有效波导,其中界面状态中的拓扑保护波可以沿着对抗障碍的路径鲁棒地传播。本文开发的理论和数值研究将有助于更好地了解纳米结构中的尺寸依赖量子旋转霍尔效应,并且还可以为纳米级拓扑波装置设计提供指导。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2020年第12期|774-790|共17页
  • 作者单位

    Department of Architecture and Civil Engineering City University of Hong Kong Tat Chee Avenue Kowloon Tong Kowloon Hong Kong SAR P.R. China;

    Department of Architecture and Civil Engineering City University of Hong Kong Tat Chee Avenue Kowloon Tong Kowloon Hong Kong SAR P.R. China;

    Department of Engineering Mechanics Zhejiang University Yuquan Campus Hangzhou 310027 China;

    Department of Engineering Mechanics Zhejiang University Yuquan Campus Hangzhou 310027 China;

    Department of Architecture and Civil Engineering City University of Hong Kong Tat Chee Avenue Kowloon Tong Kowloon Hong Kong SAR P.R. China;

    Mechanical Engineering Department Texas A&M University College Station Texas 77843-3123 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Interface state; Nanoscale; Phononic crystal; Quantum spin Hall effect; Surface effect;

    机译:界面状态;纳米级;帖子晶体;量子旋转霍尔效果;表面效应;

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