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Quantum phase transition of many interacting spins coupled to a bosonic bath: Static and dynamical properties

G. De Filippis1,2,*, A. de Candia1,2, A. S. Mishchenko3, L. M. Cangemi1, A. Nocera4,5, P. A. Mishchenko6, M. Sassetti7,8, R. Fazio1,9,10, N. Nagaosa3,11 et al.

V. Cataudella1,2

  • 1SPIN-CNR and Dip. di Fisica - Università di Napoli Federico II - I-80126 Napoli, Italy
  • 2INFN, Sezione di Napoli - Complesso Universitario di Monte S. Angelo - I-80126 Napoli, Italy
  • 3RIKEN Center for Emergent Matter Science, Wako, Saitama 351-0198, Japan
  • 4Stewart Blusson Quantum Matter Institute, University of British Columbia, Vancouver, British Columbia, Canada V6T 1Z4
  • 5Department of Physics Astronomy, University of British Columbia, Vancouver, British Columbia, Canada V6T 1Z1
  • 6NTT Secure Platform Laboratories, Tokyo 180-8585, Japan
  • 7Dipartimento di Fisica, Università di Genova, I-16146 Genova, Italy
  • 8SPIN-CNR, I-16146 Genova, Italy
  • 9ICTP, Strada Costiera 11, I-34151 Trieste, Italy
  • 10NEST, Istituto Nanoscienze-CNR, I-56126 Pisa, Italy
  • 11Department of Applied Physics, University of Tokyo, Tokyo 113-8656, Japan

  • *giulio.defilippis@unina.it

Phys. Rev. B 104, L060410 – Published 25 August, 2021

DOI: https://doi.org/10.1103/PhysRevB.104.L060410

Abstract

By using worldline and diagrammatic quantum Monte Carlo techniques, matrix product state, and a variational approach à la Feynman, we investigate the equilibrium properties and relaxation features of a quantum system of N spins antiferromagnetically interacting with each other, with strength J, and coupled to a common bath of bosonic oscillators, with strength α. We show that, in the Ohmic regime, a Beretzinski-Thouless-Kosterlitz quantum phase transition occurs. While for J=0 the critical value of α decreases asymptotically with 1/N by increasing N, for nonvanishing J it turns out to be practically independent on N, allowing to identify a finite range of values of α where spin phase coherence is preserved also for large N. Then, by using matrix product state simulations, and the Mori formalism and the variational approach à la Feynman jointly, we unveil the features of the relaxation, that, in particular, exhibits a nonmonotonic dependence on the temperature reminiscent of the Kondo effect. For the observed quantum phase transition we also establish a criterion analogous to that of the metal-insulator transition in solids.

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