Phase-Engineering Strategy for Multidimensional Light Steering in a Photonic Higher-Order Topological Insulator

被引:7
作者
Jia, Shiyin [1 ,2 ]
Huang, Renwen [1 ,2 ]
Hu, Junzheng [1 ,2 ]
Jiang, Yao [1 ,2 ]
Huang, Hui [1 ,2 ]
Xie, Biye [3 ]
Lu, Minghui [1 ,4 ]
Zhan, Peng [1 ,2 ]
Chen, Yanfeng [1 ,4 ]
Wang, Zhenlin [1 ,2 ]
机构
[1] Nanjing Univ, Collaborat Innovat Ctr Adv Microstruct, Natl Lab Solid State Microstruct, Nanjing 210093, Peoples R China
[2] Nanjing Univ, Sch Phys, Nanjing 210093, Peoples R China
[3] Chinese Univ Hong Kong, Sch Sci & Engn, Shenzhen 518172, Peoples R China
[4] Nanjing Univ, Dept Mat Sci & Engn, Nanjing 210093, Peoples R China
基金
国家重点研发计划; 中国国家自然科学基金;
关键词
controllable excitation; higher-order topology; photonic crystals; NANOCAVITY; STATES;
D O I
10.1002/lpor.202200949
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Higher-order topological (HOT) insulators have been extensively studied for their unique multidimensional boundary states such as hinge states and corner states. However, most of the recent studies are limited to static excitation of topological boundary states, restricting the development of their practical devices that possess the capability of diverse and programmable dynamic control of states. Here, a facile approach to achieve flexible control of light-steering based on the symmetrized wave profiles of topological corner states is introduced. Specifically, multiple coherent sources are imported at symmetrical positions in higher-order topological photonic crystals. By engineering phase differences among the sources, a controllable spatial-resolved excitation of topological corner states is realized and a coding technique via controllable excitation of topological corner states is raised conceptually. Furthermore, an effective way to achieve direction-selective excitation of topological edge states without the requirement of circularly polarized sources is proposed. The result provides a reliable active technique to modulate HOT boundary states while keeping the photonic structure invariable, which might be a practical alternative to manipulate light flexibly in integrated topological photonic devices with fixed configuration.
引用
收藏
页数:8
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共 45 条
  • [1] High-Q photonic nanocavity in a two-dimensional photonic crystal
    Akahane, Y
    Asano, T
    Song, BS
    Noda, S
    [J]. NATURE, 2003, 425 (6961) : 944 - 947
  • [2] Topological insulator laser: Experiments
    Bandres, Miguel A.
    Wittek, Steffen
    Harari, Gal
    Parto, Midya
    Ren, Jinhan
    Segev, Mordechai
    Christodoulides, Demetrios N.
    Khajavikhan, Mercedeh
    [J]. SCIENCE, 2018, 359 (6381)
  • [3] Quantization of fractional corner charge in Cn-symmetric higher-order topological crystalline insulators
    Benalcazar, Wladimir A.
    Li, Tianhe
    Hughes, Taylor L.
    [J]. PHYSICAL REVIEW B, 2019, 99 (24)
  • [4] Dynamically reconfigurable topological edge state in phase change photonic crystals
    Cao, Tun
    Fang, Linhan
    Cao, Ying
    Li, Nan
    Fan, Zhiyou
    Tao, Zhiguo
    [J]. SCIENCE BULLETIN, 2019, 64 (12) : 814 - 822
  • [5] Direct Observation of Corner States in Second-Order Topological Photonic Crystal Slabs
    Chen, Xiao-Dong
    Deng, Wei-Min
    Shi, Fu-Long
    Zhao, Fu-Li
    Chen, Min
    Dong, Jian-Wen
    [J]. PHYSICAL REVIEW LETTERS, 2019, 122 (23)
  • [6] Cheng XJ, 2016, NAT MATER, V15, P542, DOI [10.1038/NMAT4573, 10.1038/nmat4573]
  • [7] Higher-Order Topological Insulators and Semimetals on the Breathing Kagome and Pyrochlore Lattices
    Ezawa, Motohiko
    [J]. PHYSICAL REVIEW LETTERS, 2018, 120 (02)
  • [8] Non-Hermitian route to higher-order topology in an acoustic crystal
    Gao, He
    Xue, Haoran
    Gu, Zhongming
    Liu, Tuo
    Zhu, Jie
    Zhang, Baile
    [J]. NATURE COMMUNICATIONS, 2021, 12 (01)
  • [9] Higher-Order Weyl Semimetals
    Ghorashi, Sayed Ali Akbar
    Li, Tianhe
    Hughes, Taylor L.
    [J]. PHYSICAL REVIEW LETTERS, 2020, 125 (26)
  • [10] Optically reconfigurable higher-order valley photonic crystals based on enhanced Kerr effect
    Guo, Kai
    Xue, Qingsong
    Chen, Fujia
    Zhou, Keya
    Liu, Shutian
    Guo, Zhongyi
    [J]. OPTICS LETTERS, 2022, 47 (15) : 3828 - 3831