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Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators
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Parity-time-symmetric quantum critical phenomena.

Yuto Ashida1, Shunsuke Furukawa1, Masahito Ueda1,2

  • 1Department of Physics, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.

Nature Communications
|June 9, 2017
PubMed
Summary

Synthetic non-conservative systems with parity-time (PT) symmetry exhibit unique quantum criticality. This study reveals an exotic universality class and enhanced superfluid correlations in PT-symmetry-broken phases, extending beyond Hermitian physics.

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Area of Science:

  • Quantum Many-Body Physics
  • Non-Hermitian Systems
  • Condensed Matter Theory

Background:

  • Parity-time (PT) symmetry in synthetic non-conservative systems leads to spontaneous symmetry breaking and spectral singularity.
  • Previous studies on PT symmetry in optics and weakly interacting open quantum systems did not incorporate many-body correlations.

Purpose of the Study:

  • To extend the concept of PT symmetry to strongly correlated many-body systems.
  • To investigate the interplay between spectral singularity and quantum criticality in these systems.
  • To explore novel quantum critical phenomena and their potential experimental realization.

Main Methods:

  • Theoretical framework extending PT symmetry to strongly correlated systems.
  • Analysis of renormalization group flows in PT-symmetry-broken phases.
  • Investigation of quantum criticality and superfluid correlations.

Main Results:

  • A novel universality class arising from the combination of spectral singularity and quantum criticality, distinct from known critical phenomena.
  • Unconventional low-dimensional quantum criticality characterized by anomalously enhanced superfluid correlations.
  • Non-monotonic renormalization group flows in the PT-symmetry-broken quantum critical phase.

Conclusions:

  • The findings introduce a new paradigm for quantum criticality beyond the Hermitian framework.
  • The exotic universality class and enhanced superfluidity offer new avenues for understanding complex quantum phenomena.
  • The proposed phenomena are experimentally testable in ultracold atom systems.