Effects of dissipation on a quantum critical point with disorder

ORAL

Abstract

We study the effects of dissipation on a disordered quantum phase transition with O$(N)$ order parameter symmetry by applying a strong-disorder renormalization group to the Landau-Ginzburg-Wilson field theory of the problem. We find that Ohmic dissipation results in a non-perturbative infinite-randomness critical point with unconventional activated dynamical scaling while superohmic damping leads to conventional behavior. We discuss applications to the superconductor-metal transition in nanowires and to Hertz' theory of the itinerant antiferromagnetic transition.

Authors

  • Thomas Vojta

    • University of Missouri-Rolla
  • Jose Hoyos

    • Duke University
  • Chetan Kotabage

    • University of Missouri-Rolla