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Acoustic frequency filter based on anisotropic topological phononic crystals

机译:基于各向异性拓扑声子晶体的声频滤波器

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摘要

We present a design of acoustic frequency filter based on a two-dimensional anisotropic phononic crystal. The anisotropic band structure exhibits either a directional or a combined (global + directional) bandgap at certain frequency regions, depending on the geometry. When the time-reversal symmetry is broken, it may introduce a topologically nontrivial bandgap. The induced nontrivial bandgap and the original directional bandgap result in various interesting wave propagation behaviors, such as frequency filter. We develop a tight-binding model to characterize the effective Hamiltonian of the system, from which the contribution of anisotropy is explicitly shown. Different from the isotropic cases, the Zeeman-type splitting is not linear and the anisotropic bandgap makes it possible to achieve anisotropic propagation characteristics along different directions and at different frequencies.
机译:我们提出了一种基于二维各向异性声子晶体的声频滤波器的设计。各向异性带结构在某些频率区域显示出方向性或组合(全局+方向性)带隙,具体取决于几何形状。当时间反转对称性破裂时,可能会引入拓扑上不重要的带隙。诱发的非平凡带隙和原始方向性带隙导致各种有趣的波传播行为,例如频率滤波器。我们开发了一个紧密绑定模型来表征系统的有效哈密顿量,从中明确显示了各向异性的贡献。与各向同性情况不同,塞曼型分裂不是线性的,并且各向异性带隙使得有可能实现沿不同方向和不同频率的各向异性传播特性。

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