Dispersion-tunable photonic topological waveguides

被引:9
|
作者
Zhang, Zijian [1 ,2 ,3 ]
Li, Yuanzhen [1 ,2 ,3 ]
Wang, Chi [1 ,2 ,3 ]
Xu, Su [4 ]
Wang, Zuojia [1 ,2 ,3 ]
Li, Erping [1 ,2 ]
Chen, Hongsheng [1 ,2 ,3 ]
Gao, Fei [1 ,2 ,3 ]
机构
[1] Zhejiang Univ, Coll Informat Sci & Elect Engn, Interdisciplinary Ctr Quantum Informat, State Key Lab Modern Opt Instrumentat, Hangzhou 310027, Peoples R China
[2] Zhejiang Univ, Electromagnet Acad, Key Lab Adv Micro Nano Elect Devices & Smart Syst, Hangzhou 310027, Peoples R China
[3] Zhejiang Univ, Int Joint Innovat Ctr, Haining 314400, Peoples R China
[4] Jilin Univ, Coll Elect Sci & Engn, State Key Lab Integrated Optoelect, 2699 Qianjin St, Changchun 130012, Peoples R China
基金
中国国家自然科学基金;
关键词
SURFACE-PLASMONS;
D O I
10.1063/5.0097422
中图分类号
O59 [应用物理学];
学科分类号
摘要
Dispersion-tunable photonic topological waveguides have recently attracted much attention, due to their promising applications on topological devices with tunable operational frequencies. Since dispersions of topological waveguides traverse the whole bandgaps of bulk structures, tuning the dispersions (especially the bandwidths) requires changing the whole bulk of corresponding photonic topological insulators. A previously reported material-modification approach provided a parallel tuning on such numerous lattices; however, the increased material loss deteriorated transmissions of the topological waveguide. Here, a parallel tuning approach on structures is theoretically proposed and demonstrated, which spawns dispersion-tunable photonic topological waveguides without increasing material loss. Based on the bilayer honeycomb model, a topological valley waveguide by utilizing bilayer designer plasmonic structures is constructed, accomplished with dispersion tunings by altering interlayer distance. Experimental results validate the theoretical model and display a 61%-relative-tuning range of frequency, with a tunable relative bandwidth up to 16%. This approach may promise applications in tunable topological lasers, robust delay lines, and intelligent photonic devices.
引用
收藏
页数:6
相关论文
共 50 条
  • [1] Pulse Compression by Dynamic Control of Slow Light in Dispersion-Tunable Photonic Crystal Waveguide
    Kondo, Keisuke
    Ishikura, Norihiro
    Tamura, Takuya
    Baba, Toshihiko
    2014 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2014,
  • [2] High-speed ADC based on photonic time-stretched technology with dispersion-tunable CFBG
    Li, Shangru
    Xiao, Dongrui
    Liu, Shuaiqi
    Yu, Feihong
    Xu, Weijie
    Hu, Jie
    Sun, Siming
    Shao, Liyang
    Zhang, Qingfeng
    OPTICS EXPRESS, 2023, 31 (05) : 8274 - 8285
  • [3] Photonic Supercoupling in Silicon Topological Waveguides
    Jia, Ridong
    Tan, Yi Ji
    Navaratna, Nikhil
    Kumar, Abhishek
    Singh, Ranjan
    ADVANCED MATERIALS, 2025, 37 (06)
  • [4] Simulation of photonic crystal waveguides with dispersion
    Szabó, Z
    Kádár, G
    Balázs, JN
    CURRENT APPLIED PHYSICS, 2006, 6 (02) : 149 - 153
  • [5] Tunable topological slow-light in gyromagnetic photonic crystal waveguides with unified magnetic field
    Li, Xiaobin
    Li, Zhi-yuan
    Liang, Wenyao
    OPTICS EXPRESS, 2023, 31 (18) : 29300 - 29311
  • [6] Dispersion engineering in photonic crystal waveguides
    Krauss, TF
    Wu, LJ
    Karle, T
    PHOTONIC BANDGAP MATERIALS AND DEVICES, 2002, 4655 : 48 - 52
  • [7] Dispersion-tunable designer-plasmonic resonator with enhanced high-order resonances
    Gao, Fei
    Gao, Zhen
    Shi, Xihang
    Yang, Zhaoju
    Lin, Xiao
    Zhang, Baile
    OPTICS EXPRESS, 2015, 23 (05): : 6896 - 6902
  • [8] Optically tunable topological photonic crystal
    Shalaev, Mikhail I.
    Walasik, Wiktor
    Litchinitser, Natalia M.
    OPTICA, 2019, 6 (07) : 839 - 844
  • [9] Photonic Topological Valley-Locked Waveguides
    Chen, Qiaolu
    Zhang, Li
    Chen, Fujia
    Yan, Qinghui
    Xi, Rui
    Chen, Hongsheng
    Yang, Yihao
    ACS PHOTONICS, 2021, 8 (05): : 1400 - 1406
  • [10] Topological insulators are tunable waveguides for hyperbolic polaritons
    Wu, Jhih-Sheng
    Basov, D. N.
    Fogler, M. M.
    PHYSICAL REVIEW B, 2015, 92 (20)