论文标题

没有不对称耦合的杂交皮肤病模式

Hybrid skin-topological modes without asymmetric couplings

论文作者

Zhu, Weiwei, Gong, Jiangbin

论文摘要

与复杂能量平面上的点间隙相关的非热晶格系统中的非热皮肤效应(NHSE)引起了极大的理论和实验兴趣。在所谓的二阶非铁皮皮肤效应上研究了少得多,其中大体不支持点间隙,但仍在拐角处进行定位。这项工作发现了一类杂交皮肤模式作为二阶非铁皮皮肤效应,而没有不对称的耦合。具体而言,仅在二维Chern绝缘子中增加增益/损失,只要增益/损失强度无法缩小线路间隙,所有拓扑边缘状态都位于一个开放边界条件下的一个角落,并且块状状态扩大。由此产生的非热带切尔带仍然可以以Chern数字为特征,而混合皮肤的模式通过一些属于固有或外在的二阶拓扑绝缘体阶段的辅助遗传学系统来理解。通过提出辅助哈密顿辅助的创新构建,我们通往混合皮肤的通用途径进一步成功地扩展到具有增益和损失的非平衡拓扑系统,其中不再由chern数量捕获异常的浮雕带拓扑。因此,延伸导致令人着迷的发现非平衡杂交肤色模式。除了为混合拓扑皮肤效应实现实验性实现的直接途径外,这项研究还通过揭示三个重要概念的协同作用,即,非加利福尼亚拓扑绝缘子,二阶非铁皮皮肤效应和二阶拓扑媒介,为对角落定位的理解开辟了一个有希望的观点。

Non-Hermitian skin effect (NHSE) in non-Hermitian lattice systems, associated with a point gap on the complex energy plane, has attracted great theoretical and experimental interest. Much less is studied on the so-called second-order non-Hermitian skin effect, where the bulk does not support a point gap but localization at the corner still occurs. This work discovers a class of hybrid skin-topological modes as the second-order non-Hermitian skin effect without asymmetric couplings. Specifically, by only adding gain/loss to two-dimensional Chern insulators and so long as the gain/loss strength does not close the line gap, all the topological edge states are localized at one corner under the open boundary condition, with the bulk states extended. The resultant non-Hermitian Chern bands can be still topologically characterized by Chern numbers, whereas the hybrid skin-topological modes are understood via some auxiliary Hermitian systems that belong to either intrinsic or extrinsic second-order topological insulator phases. By proposing an innovative construction of auxiliary Hamiltonian, our generic route to hybrid skin-topological modes is further successfully extended to nonequilibrium topological systems with gain and loss, where the anomalous Floquet band topology is no longer captured by band Chern numbers. The extension thus leads to the intriguing finding of nonequilibrium hybrid skin-topological modes. In addition to offering a straightforward route to experimental realization of hybrid topological-skin effects, this study also opens up a promising perspective for the understanding of corner localization by revealing the synergy of three important concepts, namely, non-Hermitian topological insulator, second-order non-Hermitian skin effect, and second-order topological insulator.

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