Zou Deyuan, Chen Tian, Meng Haiyu, Ang Yee Sin, Zhang Xiangdong, Lee Ching Hua
Key Laboratory of Advanced Optoelectronic Quantum Architecture and Measurements of Ministry of Education, Beijing Key Laboratory of Nanophotonics and Ultrafine Optoelectronic Systems, School of Physics, Beijing Institute of Technology, Beijing 100081, China.
School of Physics and Optoelectronics, Xiangtan University, Xiangtan 411105, China; Department of Physics, National University of Singapore, Singapore 117542, Singapore.
Sci Bull (Beijing). 2024 Jul 30;69(14):2194-2204. doi: 10.1016/j.scib.2024.05.036. Epub 2024 May 29.
Exceptional bound (EB) states represent a unique new class of robust bound states protected by the defectiveness of non-Hermitian exceptional points. Conceptually distinct from the more well-known topological states and non-Hermitian skin states, they were recently discovered as a novel source of negative entanglement entropy in the quantum entanglement context. Yet, EB states have been physically elusive, being originally interpreted as negative probability eigenstates of the propagator of non-Hermitian Fermi gases. In this work, we show that EB states are in fact far more ubiquitous, also arising robustly in broad classes of systems whether classical or quantum. This hinges crucially on a newly-discovered spectral flow that rigorously justifies the EB nature of small candidate lattice systems. As a highlight, we present their first experimental realization through an electrical circuit, where they manifest as prominent stable resonant voltage profiles. Our work brings a hitherto elusive but fundamentally distinctive quantum phenomenon into the realm of classical metamaterials, and provides a novel pathway for the engineering of robust modes in otherwise sensitive systems..
例外束缚(EB)态代表了一类独特的新型稳健束缚态,受非厄米例外点的缺陷性保护。在概念上,它们与更为人熟知的拓扑态和非厄米趋肤态不同,最近在量子纠缠背景下被发现是负纠缠熵的一个新来源。然而,EB态在物理上一直难以捉摸,最初被解释为非厄米费米气体传播子的负概率本征态。在这项工作中,我们表明EB态实际上更为普遍,在广泛的经典或量子系统中也能稳健地出现。这关键取决于新发现的光谱流,它严格证明了小候选晶格系统的EB性质。作为一个亮点,我们通过一个电路首次实现了它们的实验,在该电路中它们表现为显著的稳定共振电压分布。我们的工作将一种迄今为止难以捉摸但本质上独特的量子现象带入了经典超材料领域,并为在其他敏感系统中设计稳健模式提供了一条新途径。