Wang Lei, Liu Ni, Wu Chaohua, Chen Gang
Opt Express. 2024 Jun 3;32(12):21616-21628. doi: 10.1364/OE.524678.
Exceptional points (EPs) in non-Hermitian systems have turned out to be at the origin of many intriguing effects with no counterparts in Hermitian cases. A typically interesting behavior is the chiral mode switching by dynamically winding the EP. Most encircling protocols focus on the two-state or parity-time (PT) symmetry systems. Here, we propose and investigate the dynamical encircling of multiple EPs in an anti-PT-symmetric system, which is constructed based on a one-dimensional lattice with staggered lossy modulation. We reveal that dynamically encircling the multiple EPs results in the chiral dynamics via multiple non-Hermiticity-induced nonadiabatic transitions, where the output state is always on the lowest-loss energy sheet. Compared with the PT-symmetric systems that require complicated variation of the gain/loss rate or on-site potentials, our system only requires modulations of the couplings which can be readily realized in various experimental platforms. Our scheme provides a route to study non-Hermitian physics by engineering the EPs and implement novel photonic devices with unconventional functions.
非厄米系统中的例外点(EPs)已被证明是许多有趣效应的起源,而这些效应在厄米情形中并无对应。一种典型的有趣行为是通过动态缠绕例外点实现手征模式切换。大多数环绕协议聚焦于两态或宇称 - 时间(PT)对称系统。在此,我们提出并研究了在一个基于具有交错损耗调制的一维晶格构建的反PT对称系统中多个例外点的动态环绕。我们揭示,动态环绕多个例外点会通过多个非厄米性诱导的非绝热跃迁导致手征动力学,其中输出态始终处于最低损耗能量曲面上。与需要增益/损耗率或在位势的复杂变化的PT对称系统相比,我们的系统仅需要对耦合进行调制,这在各种实验平台中都能很容易地实现。我们的方案提供了一条通过设计例外点来研究非厄米物理的途径,并实现具有非常规功能的新型光子器件。