4.6 Article

Linear response theory and optical conductivity of Floquet topological insulators

Journal

PHYSICAL REVIEW B
Volume 101, Issue 17, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.101.174314

Keywords

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Funding

  1. National Science Foundation CAREER Grant [DMR-1350663]
  2. Binational Science Foundation Grant [2014345]
  3. College of Arts and Sciences at Indiana University
  4. NSERC
  5. FRQNT
  6. National Science Foundation through the Center for Dynamics and Control of Materials: an NSF MRSEC [DMR-1720595]
  7. National Science Foundation [PHY1607611]
  8. Max-Planck Institute for the Physics of Complex Systems in Dresden, Germany

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Motivated by the quest for experimentally accessible dynamical probes of Floquet topological insulators, we formulate the linear response theory of a periodically driven system. We illustrate the applications of this formalism by giving general expressions for optical conductivity of Floquet systems, including its homodyne and heterodyne components and beyond. We obtain the Floquet optical conductivity of specific driven models, including two-dimensional Dirac material such as the surface of a topological insulator, graphene, and the Haldane model irradiated with circularly or linearly polarized laser, as well as semiconductor quantum well driven by an ac potential. We obtain approximate analytical expressions and perform numerically exact calculations of the Floquet optical conductivity in different scenarios of the occupation of the Floquet bands, in particular the diagonal Floquet distribution and the distribution obtained after a quench. We comment on experimental signatures and detection of Floquet topological phases using optical probes.

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