混乱的
物理
拓扑(电路)
厄米矩阵
光力学
光子学
随机性
耦合映象格
物理中的拓扑熵
统计物理学
量子
拓扑量子数
混沌同步
量子力学
计算机科学
数学
控制理论(社会学)
统计
控制(管理)
组合数学
人工智能
作者
Lei Chen,Feifan Huang,Hongteng Wang,Linwei Huang,Junhua Huang,Gui‐Shi Liu,Yaofei Chen,Yunhan Luo,Zhe Chen
标识
DOI:10.1016/j.chaos.2022.112678
摘要
Chaotic dynamics in microcavity have promoted massive discoveries and applications ranging from decoherence suppression to broadband optical devices. However, a chaotic light source on the chip is more likely to suffer from the ambient randomness and perturbations than its bulk counterparts, vanishing chaotic dynamics. Topological protection provides a robust framework for manipulating the periodic wave dynamics, whereas the symmetric layout in topological protection poses a direct challenge to leveraging this notion in chaotic dynamics. Here, we discover that benefiting from an engineered exceptional point, the non-Hermitian-enhanced topological protection yields zero modes and switches the chaotic dynamics. As a result, this new effect significantly extends the topologically protected chaotic dynamics to a more general trivial phase beyond the constraint of the topological invariant. More importantly, the zero modes merit robust chaotic dynamics prevail with intentionally introduced perturbations. Moreover, we find that an extended photonics lattice composed of an increased number of microcavities not only offers a more robust topological protection but also can delay the chaos generation, providing a new degree of freedom to harness the chaos generation. This study presents a promising approach for robust on-chip chaotic light sources and advances various explorations on multibody non-Hermitian physics.
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