Sensitivity of topological edge states in a non-Hermitian dimer chain

被引:1
|
作者
ZHIWEI GUO [1 ]
TENGZHOU ZHANG [1 ]
JUAN SONG [1 ]
HAITAO JIANG [1 ]
HONG CHEN [1 ]
机构
[1] MOE Key Laboratory of Advanced Micro-structured Materials,School of Physics Sciences and Engineering,Tongji University
基金
上海市自然科学基金; 中国博士后科学基金; 国家重点研发计划; 中国国家自然科学基金;
关键词
D O I
暂无
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
Photonic topological edge states in one-dimensional dimer chains have long been thought to be robust to structural perturbations by mapping the topological Su–Schrieffer–Heeger model of a solid-state system. However, the edge states at the two ends of a finite topological dimer chain will interact as a result of near-field coupling. This leads to deviation from topological protection by the chiral symmetry from the exact zero energy, weakening the robustness of the topological edge state. With the aid of non-Hermitian physics, the splitting frequencies of edge states can be degenerated again, with topological protection recovered by altering the gain or loss strength of the structure. This point of coalescence is known as the exceptional point(EP). The intriguing physical properties of EPs in topological structures give rise to many fascinating and counterintuitive phenomena. In this work, based on a finite non-Hermitian dimer chain composed of ultra-subwavelength resonators, we propose theoretically and verify experimentally that the sensitivity of topological edge states is greatly affected when the system passes through the EP. Using the EP of a non-Hermitian dimer chain, we realize a new sensor that is sensitive to perturbation of on-site frequency at the end of the structure and yet topologically protected from internal perturbation of site-to-site couplings. Our demonstration of a non-Hermitian topological structure with an EP paves the way for the development of novel sensors that are not sensitive to internal manufacturing errors but are highly sensitive to changes in the external environment.
引用
收藏
页码:574 / 582
页数:9
相关论文
共 50 条
  • [31] Multiband topological states in non-Hermitian photonic crystals
    Jiang, Jiapei
    Yan, Bei
    Peng, Yuchen
    Xie, Jianlan
    Shi, Aoqian
    Liu, Jianjun
    OPTICS LETTERS, 2022, 47 (02) : 437 - 440
  • [32] Progress on the novel states in non-Hermitian topological acoustics
    Gu, Zhongming
    Guo, Jiamin
    Zhu, Jie
    CHINESE SCIENCE BULLETIN-CHINESE, 2023, 68 (26): : 3428 - 3436
  • [33] Edge Modes, Degeneracies, and Topological Numbers in Non-Hermitian Systems
    Leykam, Daniel
    Bliokh, Konstantin Y.
    Huang, Chunli
    Chong, Y. D.
    Nori, Franco
    PHYSICAL REVIEW LETTERS, 2017, 118 (04)
  • [34] Topological edge modes in non-Hermitian plasmonic waveguide arrays
    Ke, Shaolin
    Wang, Bing
    Long, Hua
    Wang, Kai
    Lu, Peixiang
    OPTICS EXPRESS, 2017, 25 (10): : 11132 - 11143
  • [35] PT phase transitions of edge states at PT symmetric interfaces in non-Hermitian topological insulators
    Ni, Xiang
    Smirnova, Daria
    Poddubny, Alexander
    Leykam, Daniel
    Chong, Yidong
    Khanikaev, Alexander B.
    PHYSICAL REVIEW B, 2018, 98 (16)
  • [36] Nonlinear topological edge states in a non-Hermitian array of optical waveguides embedded in an atomic gas
    Hang, Chao
    Zezyulin, Dmitry A.
    Huang, Guoxiang
    Konotop, Vladimir V.
    PHYSICAL REVIEW A, 2021, 103 (04)
  • [37] Non-Hermitian topological magnonics
    Yu, Tao
    Zou, Ji
    Zeng, Bowen
    Rao, J. W.
    Xia, Ke
    PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 2024, 1062 : 1 - 86
  • [38] Non-Hermitian topological photonics
    Nasari, Hadiseh
    Pyrialakos, Georgios G.
    Christodoulides, Demetrios N.
    Khajavikhan, Mercedeh
    OPTICAL MATERIALS EXPRESS, 2023, 13 (04) : 870 - 885
  • [39] Hermitian and non-hermitian higher-order topological states in mechanical metamaterials
    Tian, Yuping
    Tan, Zhuhua
    Zhang, Wei
    EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2024, 106
  • [40] Non-Hermitian Floquet topological phases with arbitrarily many real-quasienergy edge states
    Zhou, Longwen
    Gong, Jiangbin
    PHYSICAL REVIEW B, 2018, 98 (20)