Engineering topology in graphene with chiral cavities

被引:4
|
作者
Dag, Ceren B. [1 ,2 ]
Rokaj, Vasil [1 ,2 ]
机构
[1] Harvard Smithsonian Ctr Astrophys, ITAMP, Cambridge, MA 02138 USA
[2] Harvard Univ, Dept Phys, Cambridge, MA 02138 USA
关键词
FLOQUET-BLOCH; INSULATOR; FARADAY; TRANSITION; STATES;
D O I
10.1103/PhysRevB.110.L121101
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Strongly coupling materials to cavity fields can affect their electronic properties altering the phases of matter. We study monolayer graphene whose electrons are coupled to both left and right circularly polarized vacuum fluctuations, and time-reversal symmetry is broken due to a phase shift between the two polarizations. We develop a many-body perturbative theory, and derive cavity-mediated electronic interactions. This theory leads to a gap equation which predicts a topological band gap at Dirac nodes in vacuum and when the cavity is prepared in an excited Fock state. Remarkably, topological band gaps also open in light-matter hybridization points away from the Dirac nodes giving rise to photoelectron bands with high Chern numbers. We reveal that the physical mechanism behind this phenomenon is generic and due to the exchange of photons with electronic matter at the hybridization points. Specifically, the number and polarization of exchanged photons directly determine the band topology of graphene subject to enhanced chiral vacuum fluctuations. Hence, our theory shows that graphene-based materials could host Chern insulator phases in engineered electromagnetic environments, bridging cavity quantum electrodynamics to Floquet engineering of materials while protected from the ensuing heating effects.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] On the topology of infinite regular and chiral maps
    Arredondo, John A.
    Ramirez Maluendas, Camilo
    Valdez, Ferran
    DISCRETE MATHEMATICS, 2017, 340 (06) : 1180 - 1186
  • [32] Network topology of interlocked chiral particles
    Monderkamp, Paul A. A.
    Windisch, Rika S. S.
    Wittmann, Rene
    Loewen, Hartmut
    JOURNAL OF CHEMICAL PHYSICS, 2023, 158 (16):
  • [33] NONTRIVIAL TOPOLOGY AND THE CHIRAL SCHWINGER MODEL
    DIAS, SA
    LINHARES, CA
    PHYSICAL REVIEW D, 1993, 47 (04): : 1672 - 1684
  • [34] Axially twisted chiral nematic structures in cylindrical cavities
    Ambrozic, M
    Zumer, S
    PHYSICAL REVIEW E, 1999, 59 (04): : 4153 - 4160
  • [35] Anomalous Cyclotron Motion in Graphene Superlattice Cavities
    Kraft, Rainer
    Liu, Ming-Hao
    Selvasundaram, Pranauv Balaji
    Chen, Szu-Chao
    Krupke, Ralph
    Richter, Klaus
    Danneau, Romain
    PHYSICAL REVIEW LETTERS, 2020, 125 (21)
  • [36] Chiral light in twisted Fabry-Perot cavities
    Dyakov, Sergey A.
    Salakhova, Natalia S.
    Ignatov, Alexey V.
    Fradkin, Ilia M.
    Gippius, Nikolay A.
    NANOPHOTONICS X, 2024, 12991
  • [37] Azimuthal anchoring energy of a chiral nematic in cylindrical cavities
    Aloe, R
    Nicotera, I
    Golemme, A
    APPLIED PHYSICS LETTERS, 1999, 75 (03) : 343 - 345
  • [39] Graphene-based photodetector with two cavities
    Ferreira, Aires
    Peres, N. M. R.
    Ribeiro, R. M.
    Stauber, T.
    PHYSICAL REVIEW B, 2012, 85 (11)
  • [40] Photon condensation, Van Vleck paramagnetism, and chiral cavities
    Mercurio, Alberto
    Andolina, Gian Marcello
    Pellegrino, Francesco M. D.
    Di Stefano, Omar
    Jarillo-Herrero, Pablo
    Felser, Claudia
    Koppens, Frank H. L.
    Savasta, Salvatore
    Polini, Marco
    PHYSICAL REVIEW RESEARCH, 2024, 6 (01):