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非厄米系统中开放演化轨迹的手性传输。

Chiral transmission by an open evolution trajectory in a non-Hermitian system.

作者信息

Shu Xiaoqian, Zhong Qi, Hong Kai, You Oubo, Wang Jian, Hu Guangwei, Alù Andrea, Zhang Shuang, Christodoulides Demetrios N, Chen Lin

机构信息

Wuhan National Laboratory for Optoelectronics and School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan, 430074, China.

Zhejiang Lab, Hangzhou, 311121, China.

出版信息

Light Sci Appl. 2024 Mar 5;13(1):65. doi: 10.1038/s41377-024-01409-1.

Abstract

Exceptional points (EPs), at which two or more eigenvalues and eigenstates of a resonant system coalesce, are associated with non-Hermitian Hamiltonians with gain and/or loss elements. Dynamic encircling of EPs has received significant interest in recent years, as it has been shown to lead to highly nontrivial phenomena, such as chiral transmission in which the final state of the system depends on the encircling handedness. Previously, chiral transmission for a pair of eigenmodes has been realized by establishing a closed dynamical trajectory in parity-time- (PT-) or anti-PT-symmetric systems. Although chiral transmission of symmetry-broken modes, more accessible in practical photonic integrated circuits, has been realized by establishing a closed trajectory encircling EPs in anti-PT-symmetric systems, the demonstrated transmission efficiency is very low due to path-dependent losses. Here, we demonstrate chiral dynamics in a coupled waveguide system that does not require a closed trajectory. Specifically, we explore an open trajectory linking two infinite points having the same asymptotic eigenmodes (not modes in PT- and anti-PT-symmetric systems), demonstrating that this platform enables high-efficiency chiral transmission, with each eigenmode localized in a single waveguide. This concept is experimentally implemented in a coupled silicon waveguide system at telecommunication wavelengths. Our work provides a new evolution strategy for chiral dynamics with superior performance, laying the foundation for the development of practical chiral-transmission devices.

摘要

例外点(EPs)是指共振系统的两个或更多个本征值和本征态合并的点,与具有增益和/或损耗元件的非厄米哈密顿量相关。近年来,对例外点的动态环绕引起了广泛关注,因为已证明它会导致高度不平凡的现象,例如手性传输,其中系统的最终状态取决于环绕的手性。此前,通过在宇称-时间-(PT-)或反PT对称系统中建立封闭的动态轨迹,已实现了一对本征模的手性传输。尽管在实际光子集成电路中更容易实现的对称破缺模的手性传输已通过在反PT对称系统中建立环绕例外点的封闭轨迹得以实现,但由于与路径相关的损耗,所展示的传输效率非常低。在此,我们展示了一种无需封闭轨迹的耦合波导系统中的手性动力学。具体而言,我们探索了一条连接具有相同渐近本征模(不是PT和反PT对称系统中的模式)的两个无穷远点的开放轨迹,证明该平台能够实现高效的手性传输,每个本征模都局域在单个波导中。这一概念在电信波长的耦合硅波导系统中通过实验得以实现。我们的工作为具有卓越性能的手性动力学提供了一种新的演化策略,为实用手性传输器件的开发奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e19/10912664/63cf8f79241f/41377_2024_1409_Fig1_HTML.jpg

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