Cavity-assisted superconductivity in low-dimensional systems

ORAL

Abstract

Coupling to vacuum fluctuations of an electromagnetic cavity mode can significantly enhance the electron-electron pairing. The enhancement is due to significant compression of the cavity field far below the free-space diffraction limit. We consider low-dimensional systems, such as helical one-dimensional edge modes on a topological material or discrete energy levels in quantum dots coupled via a cavity mode with proper polarization. Applying an Eliashberg-type self-consistent approximation, we investigate the resulting superconducting pairing in various unconventional channels, including both a finite center-of-mass momentum, as well as dynamical superconducting pairing. We explore signatures in the single-particle excitation spectrum, spin response, as well as polariton collective excitation. The platform enables exploration of optical control of superconducting states, enhanced charge transport, polariton superconductivity, and cavity BEC transition.

*DK and AVB acknowledge support from the University of Connecticut, VILLUM FONDEN via the Centre of Excellence for Dirac Materials (Grant No. 11744), the European Research Council under the European Union Seventh Framework ERS-2018-SYG 810451 HERO, the Swedish Research Council (Vetenskapsrådet) (Grant No. VR-2017-03997).

Presenters

  • Dushko Kuzmanovski

    • Nordita KTH Royal Institute of Technology and Stockholm University
    • NORDITA

Authors

  • Dushko Kuzmanovski

    • Nordita KTH Royal Institute of Technology and Stockholm University
    • NORDITA
  • Ruben Seoane Souto

    • Division of Solid State Physics and NanoLund, Lund University
  • Alexander Balatsky

    • Physics, University of Connecticut
    • Department of Physics, University of Connecticut
    • Department of Physics, University of Connecticut (UCONN)
    • University of Connecticut