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Band Structure in Carbon Nanostructure Phononic Crystals

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Mendeley Data2024-06-25 更新2024-06-27 收录
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We investigate the band structure of elastic waves propagating in carbon nanostructure phononic crystals with square, rectangular, triangular, honeycomb and Kagomé lattices. We also study the influence of carbon nanostructure cross section geometry - circular, hollow circular, square and rotated square with a 45° angle of rotation with respect to the x and y axes. Plane wave expansion method is used to solve the governing equations of motion of a isotropic solid based on classical elasticity theory, ignoring nanoscopic size effects, considering two-dimensional periodicity and wave propagation in the xy plane. Complete band gaps between XY and Z modes are observed for all types of carbon nanostructures. The best performance is for nanophononic crystal with circular carbon nanostructures in a triangular lattice with high band gap width in a broad range of filling fraction. We suggest that carbon nanostructure phononic crystals are feasible for elastic vibration management in GHz.

本研究针对搭载方形、矩形、三角形、蜂窝形及Kagomé晶格的碳纳米结构声子晶体中传播的弹性波能带结构开展了系统分析。同时,本研究还考察了碳纳米结构截面几何形貌对能带结构的影响,涵盖圆形、空心圆形、方形以及相对于x、y轴旋转45°的旋转方形截面。基于经典弹性理论,针对各向同性固体,本研究采用平面波展开法(Plane Wave Expansion Method)求解其运动控制方程,研究过程中忽略纳米尺度尺寸效应,同时考虑二维周期性与弹性波在xy平面内的传播特性。所有类型的碳纳米结构均观测到XY模式与Z模式之间存在完全能带禁带。性能最优的结构为三角形晶格内嵌圆形碳纳米结构的纳米声子晶体,其在较宽的填充率范围内均可实现较宽的能带禁带宽度。本研究表明,碳纳米结构声子晶体可应用于GHz频段的弹性振动调控。

创建时间:
2023-06-28
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