Effective theory of lattice electrons strongly coupled to quantum electromagnetic fields

被引:21
作者
Li, Jiajun [1 ,2 ]
Schamriss, Lukas [1 ]
Eckstein, Martin [1 ]
机构
[1] Univ Erlangen Nurnberg, Chair Theoret Solid State Phys, D-91054 Erlangen, Germany
[2] Paul Scherrer Inst, Lab Theoret & Computat Phys, CH-5232 Villigen, Switzerland
基金
欧盟地平线“2020”;
关键词
PHASE-TRANSITIONS; GAUGE-INVARIANCE; REALIZATION; INSULATOR; MODEL;
D O I
10.1103/PhysRevB.105.165121
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Recent experiments have revealed the tantalizing possibility of fabricating lattice electronic systems strongly coupled to quantum fluctuations of electromagnetic fields, e.g., by means of geometry confinement from a cavity or artificial gauge fields in quantum simulators. In this work, we develop a high-frequency expansion to construct the effective models for lattice electrons strongly coupled to a continuum of off-resonant photon modes with arbitrary dispersion. The theory is nonperturbative in the light-matter coupling strength and is therefore particularly suitable for the ultrastrong light-matter coupling regime. Using the effective models, we demonstrate how the dispersion and topology of the electronic energy bands can be tuned by the cavity. In particular, quasi-one-dimensional physics can emerge in a two-dimensional square lattice due to a spatially anisotropic band renormalization, and a topologically nontrivial anomalous quantum Hall state can be induced in a honeycomb lattice when the cavity setup breaks time-reversal symmetry. We also demonstrate that the photon-mediated interaction induces an unconventional superconducting paired phase distinct from the pair-density-wave state discussed in models with truncated light-matter coupling. Finally, we study a realistic setup of a Fabry-P??rot cavity. Our work provides a systematic framework to explore the emergent phenomena due to strong light-matter coupling and points out alternative directions of engineering orders and topological states in solids.
引用
收藏
页数:16
相关论文
共 89 条
[1]   Theory of photon condensation in a spatially varying electromagnetic field [J].
Andolina, G. M. ;
Pellegrino, F. M. D. ;
Giovannetti, V ;
MacDonald, A. H. ;
Polini, M. .
PHYSICAL REVIEW B, 2020, 102 (12)
[2]   Cavity quantum electrodynamics of strongly correlated electron systems: A no-go theorem for photon condensation [J].
Andolina, G. M. ;
Pellegrino, F. M. D. ;
Giovannetti, V ;
MacDonald, A. H. ;
Polini, M. .
PHYSICAL REVIEW B, 2019, 100 (12)
[3]   Dimensional Crossover Driven by an Electric Field [J].
Aron, Camille ;
Kotliar, Gabriel ;
Weber, Cedric .
PHYSICAL REVIEW LETTERS, 2012, 108 (08)
[4]   Quantum Electrodynamic Control of Matter: Cavity-Enhanced Ferroelectric Phase Transition [J].
Ashida, Yuto ;
Imamoglu, Atac ;
Faist, Jerome ;
Jaksch, Dieter ;
Cavalleri, Andrea ;
Demler, Eugene .
PHYSICAL REVIEW X, 2020, 10 (04)
[5]  
Basov DN, 2017, NAT MATER, V16, P1077, DOI [10.1038/NMAT5017, 10.1038/nmat5017]
[6]   Electromagnetic coupling and gauge invariance in the empirical tight-binding method [J].
Boykin, TB ;
Bowen, RC ;
Klimeck, G .
PHYSICAL REVIEW B, 2001, 63 (24)
[7]   Universal high-frequency behavior of periodically driven systems: from dynamical stabilization to Floquet engineering [J].
Bukov, Marin ;
D'Alessio, Luca ;
Polkovnikov, Anatoli .
ADVANCES IN PHYSICS, 2015, 64 (02) :139-226
[8]   Cavity-induced quantum spin liquids [J].
Chiocchetta, Alessio ;
Kiese, Dominik ;
Zelle, Carl Philipp ;
Piazza, Francesco ;
Diehl, Sebastian .
NATURE COMMUNICATIONS, 2021, 12 (01)
[9]   Dynamical time-reversal symmetry breaking and photo-induced chiral spin liquids in frustrated Mott insulators [J].
Claassen, Martin ;
Jiang, Hong-Chen ;
Moritz, Brian ;
Devereaux, Thomas P. .
NATURE COMMUNICATIONS, 2017, 8
[10]   Cavity Quantum Eliashberg Enhancement of Superconductivity [J].
Curtis, Jonathan B. ;
Raines, Zachary M. ;
Allocca, Andrew A. ;
Hafezi, Mohammad ;
Galitski, Victor M. .
PHYSICAL REVIEW LETTERS, 2019, 122 (16)