论文标题

二维正方形晶格的拓扑稳健角状态,带有$ \ mathbf c _ {\ mathbf 4} $ Symmetry在完全耦合的偶性阵列中

Topological Robust Corner States of a Two-Dimensional Square Lattice with $\mathbf C_{\mathbf 4}$ Symmetry in Fully Coupled Dipolar Arrays

论文作者

Luo, Chen, Zhou, Xiang, Li, Hui-Chang, Zhang, Tai-Lin, Shen, Yun, Deng, Xiao-Hua

论文摘要

高阶拓扑绝缘子(HOTIS)是一个令人兴奋的话题。我们构建了一个方形晶格偶极阵列,它通过超越常规的标量耦合来支持平面外和平面模式。平面模式自然会破坏$ \ mathrm c_ {4} $对称,我们仅研究了维护$ \ mathrm c_ {4} $对称的平面外模式。由于长期衰减的远程耦合,我们通过使用晶格总和技术考虑其完全耦合的相互作用,并与耦合偶极法(CDM)结合使用,以详细研究其拓扑特性。 Interestingly, even when the full coupling is considered, the topological properties of the system remain similar to those of the 2D Su-Schrieffer-Heeger(SSH) model, but very differently, it supports robust zero-energy corner states (ZECSs) with $\mathrm C_{4}$ symmetry, we calculate the bulk polarization and discuss in detail the topological origin of the ZECSs.本文中的晶格总和可以应用于任意完全耦合的2D偶极阵列。我们使用的材料能够将光限制在深度次波长量表中,它具有增强Terahertz(THZ)范围的光结合相互作用的巨大潜力。

Higher-order topological insulators(HOTIs) is an exciting topic. We constructed a square lattice dipole arrays, it supports out-of-plane and in-plane modes by going beyond conventional scalar coupling. In-plane modes naturally break $\mathrm C_{4}$ symmetry, we only studied the out-of-plane modes that maintain $\mathrm C_{4}$ symmetry. Due to the slowly decaying long-range coupling, we consider its fully coupled interactions by using the lattice sums technique and combined with the coupled dipole method (CDM) to study its topological properties in detail. Interestingly, even when the full coupling is considered, the topological properties of the system remain similar to those of the 2D Su-Schrieffer-Heeger(SSH) model, but very differently, it supports robust zero-energy corner states (ZECSs) with $\mathrm C_{4}$ symmetry, we calculate the bulk polarization and discuss in detail the topological origin of the ZECSs. The lattice sums technique in the article can be applied to arbitrary fully coupled 2D dipole arrays. The materials we used can be able to confine light into the deep subwavelength scale, it has a great potential in enhancing light-matter interactions in the terahertz (THz) range.

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