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局域共振超材料中的谷霍尔弹性边缘态

Valley Hall Elastic Edge States in Locally Resonant Metamaterials.

作者信息

Fang Wenbo, Han Chunyu, Chen Yuyang, Liu Yijie

机构信息

School of Civil Engineering, Guangzhou University, Guangzhou 510006, China.

出版信息

Materials (Basel). 2022 Feb 17;15(4):1491. doi: 10.3390/ma15041491.

Abstract

This paper presents a locally resonant metamaterial periodically rearranged as a local resonator, that is hexagonal holes arranged in a thin plate replace the elastic local resonator to achieve the quantum valley Hall effect. Due to the C3v symmetry in the primitive hexagonal lattice, one Dirac point emerges at high symmetry points in the Brillouin zone in the sub-wavelength area. Rotating the beam element of the resonator can break the spatial inversion symmetry to lift the Dirac degeneracy and form a new bandgap. Thus, the band inversion is discovered by computing the relationship between the associated bandgap and the rotational parameter. We also confirmed this result by analyzing the vortex chirality and calculating the Chern number. We can discover two kinds of edge states in the projected band obtained by computing the supercell composed of different topological microstructures. Finally, the propagation behavior in various heterostructures at low frequencies was analyzed. It is shown that these valley Hall elastic insulators can guide elastic waves along sharp interfaces and are immune to backscattering from defects or disorder. By utilizing elastic resonators, a simple reconfigurable topological elastic metamaterial is realized in the sub-wavelength area.

摘要

本文提出了一种周期性重排为局部谐振器的局域共振超材料,即薄板中排列的六边形孔取代弹性局部谐振器以实现量子谷霍尔效应。由于原始六边形晶格中的C3v对称性,在亚波长区域的布里渊区的高对称点处出现一个狄拉克点。旋转谐振器的梁单元可以打破空间反演对称性以解除狄拉克简并并形成新的带隙。因此,通过计算相关带隙与旋转参数之间的关系发现了能带反转。我们还通过分析涡旋手性和计算陈数证实了这一结果。通过计算由不同拓扑微结构组成的超胞,我们可以在投影能带中发现两种边缘态。最后,分析了低频下各种异质结构中的传播行为。结果表明,这些谷霍尔弹性绝缘体可以沿着尖锐界面引导弹性波,并且不受缺陷或无序的背散射影响。通过利用弹性谐振器,在亚波长区域实现了一种简单的可重构拓扑弹性超材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b80/8877548/408c6533b2f1/materials-15-01491-g001.jpg

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