Phonon-assisted Floquet engineering of second-order topological phases

ORAL

Abstract

The co-existence of spatial and non-spatial symmetries together with appropriate commutation/anticommutation relations between them can give rise to static higher-order topological phases, which host gapless boundary modes of co-dimension higher than one. Alternative to spatial symmetries, space-time symmetries in a Floquet system can lead to anomalous Floquet boundary modes of higher co-dimensions, presumably with alterations in the commutation/anticommutation relations with respect to non-spatial symmetries. In this work, we discuss how a coherently excited phonon mode can be used to promote a spatial symmetry with which the static system is always trivial, to a space-time symmetry which supports non-trivial Floquet higher-order topological phase. We present two examples– one in class AIII and another in class D where a coherently excited phonon mode promotes the reflection symmetry to a time-glide symmetry such that the commutation/anticommutation relations between spatial and non-spatial symmetries are modified. These altered relations allow the previously trivial system to host gapless modes of co-dimension two at reflection-symmetric boundaries.

*This work was supported by ARO Grant No. W911NF-16-1-0361.

Presenters

  • Swati Chaudhary

    • Caltech

Authors

  • Swati Chaudhary

    • Caltech
  • Arbel Haim

    • Caltech
  • Yang Peng

    • Caltech
  • Gil Refael

    • Caltech
    • Institute for Quantum Information and Matter, California Institute of Technology
    • Institute of Quantum Information and Matter and Department of Physics, California Institute of Technology, Pasadena, California 91125, USA