Topological Mechanics from Supersymmetry

ORAL

Abstract

In topological mechanics, the identification of a mechanical system's rigidity matrix with an electronic tight-binding model allows inferring topological properties of the mechanical system, such as the occurrence of `floppy' boundary modes, from the associated electronic band structure. Here we introduce an approach to systematically construct topological mechanical systems by an exact supersymmetry (SUSY) that relates the bosonic (mechanical) and fermionic (e.g. electronic) degrees of freedom. As examples, we discuss mechanical analogs of the Kitaev honeycomb model and of a second-order topological insulator with floppy corner modes. Our SUSY construction naturally defines hitherto unexplored topological invariants for bosonic (mechanical) systems, such as bosonic Wilson loop operators that are formulated in terms of a SUSY-related fermionic Berry curvature.

*We gratefully acknowledge the hospitality of the Kavli Institute for Theoretical Physics, supported by NSF PHY-1125915, where this work was initiated during the “Intertwined orders” program. The Cologne group acknowledges partial funding from the DFG within CRC 1238 (project C02) and CRC/TR 183 (project B01).

Presenters

  • Michael Lawler

    • Department of Physics, Cornell University, USA
    • Department of Physics, Cornell University

Authors

  • Michael Lawler

    • Department of Physics, Cornell University, USA
    • Department of Physics, Cornell University
  • Jan Attig

    • Institute for Theoretical Physics, University of Cologne, Germany
  • Krishanu Roychowdhury

    • Department of Physics, Cornell University, USA
  • Simon Trebst

    • Institute for Theoretical Physics, University of Cologne, Germany
    • Institute for Theoretical Physics, University of Cologne
    • Univ Cologne
    • University of Cologne