Transport induced dimer state from topological corner states

被引:0
|
作者
Kai-Tong Wang
Yafei Ren
Fuming Xu
Yadong Wei
Jian Wang
机构
[1] Shenzhen University,College of Physics and Energy
[2] Shenzhen University,Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education and Guangdong Province, College of Optoelectronic Engineering
[3] The University of Texas at Austin,Department of Physics
[4] Shenzhen University,College of Physics and Optoelectronic Engineering
[5] University of Hong Kong,Department of Physics
关键词
higher-order topological insulators; multiple resonant tunneling; in-plane Zeeman field; two-dimensional honeycomb lattice;
D O I
暂无
中图分类号
学科分类号
摘要
Recently, a new type of second-order topological insulator has been theoretically proposed by introducing an in-plane Zeeman field into the Kane-Mele model in the two-dimensional honeycomb lattice. A pair of topological corner states arise at the corners with obtuse angles of an isolated diamond-shaped flake. To probe the corner states, we study their transport properties by attaching two leads to the system. Dressed by incoming electrons, the dynamic corner state is very different from its static counterpart. Resonant tunneling through the dressed corner state can occur by tuning the in-plane Zeeman field. At the resonance, the pair of spatially well separated and highly localized corner states can form a dimer state, whose wavefunction extends almost the entire bulk of the diamond-shaped flake. By varying the Zeeman field strength, multiple resonant tunneling events are mediated by the same dimer state. This re-entrance effect can be understood by a simple model. These findings extend our understanding of dynamic aspects of the second-order topological corner states.
引用
收藏
相关论文
共 50 条
  • [31] Topological corner states in non -Hermitian photonic crystals
    Zhou, Xingping
    Wu, Jing
    Wu, Yongfeng
    OPTICS COMMUNICATIONS, 2020, 466
  • [32] Corner and edge states in topological Sierpinski Carpet systems
    Lage, L. L.
    Rappe, N. C.
    Latge, A.
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2025, 37 (02)
  • [33] Topological edge and corner states in bismuth fractal nanostructures
    Canyellas, R.
    Liu, Chen
    Arouca, R.
    Eek, L.
    Wang, Guanyong
    Yin, Yin
    Guan, Dandan
    Li, Yaoyi
    Wang, Shiyong
    Zheng, Hao
    Liu, Canhua
    Jia, Jinfeng
    Smith, C. Morais
    NATURE PHYSICS, 2024, 20 (09) : 1421 - 1428
  • [34] Topological edge and corner states in biphenylene photonic crystal
    Phan, Huyen thanh
    Koizumi, Keiki
    Liu, Feng
    Wakabayashi, Katsunori
    OPTICS EXPRESS, 2024, 32 (02) : 2223 - 2234
  • [35] Topological corner states in bilayer and trilayer systems with vertically stacked topological heterostructures
    Ishida, Natsuko
    Ezawa, Motohiko
    Lu, Guangtai
    Lin, Wenbo
    Ota, Yasutomo
    Arakawa, Yasuhiko
    Iwamoto, Satoshi
    Physical Review B, 2025, 111 (11)
  • [36] Tailoring coupled topological corner states in photonic crystals via symmetry breaking induced by defects
    Zhang, Zhaojian
    Yang, Junbo
    Lan, Zhihao
    PHYSICAL REVIEW RESEARCH, 2024, 6 (01):
  • [37] Vacancy-superlattice-induced higher-order topological corner states in a Chern insulator
    Tu, Wei
    Wu, Ya-Jie
    Liu, Chao-Chen
    Li, Ning
    EPL, 2023, 142 (01)
  • [38] Non-Hermiticity induced topological edge states with unique transport
    Gong, Ping
    Bo, Fan
    Fang, Yun-Tuan
    PHYSICA SCRIPTA, 2023, 98 (05)
  • [39] Observation of Topological Corner State Arrays in Photonic Quasicrystals
    Shi, Aoqian
    Peng, Yiwei
    Jiang, Jiapei
    Peng, Yuchen
    Peng, Peng
    Chen, Jianzhi
    Chen, Hongsheng
    Wen, Shuangchun
    Lin, Xiao
    Gao, Fei
    Liu, Jianjun
    LASER & PHOTONICS REVIEWS, 2024, 18 (07)
  • [40] Topological Corner State Laser in Kagome Waveguide Arrays
    Zhong, H.
    Kartashov, Y., V
    Szameit, A.
    Li, Y. D.
    Liu, C. L.
    Zhang, Y. Q.
    2021 CONFERENCE ON LASERS AND ELECTRO-OPTICS EUROPE & EUROPEAN QUANTUM ELECTRONICS CONFERENCE (CLEO/EUROPE-EQEC), 2021,