Perfect intrinsic squeezing at the superradiant phase transition critical point

Abstract

Some of the most exotic properties of the quantum vacuum are predicted in ultrastrongly coupled photon–atom systems; one such property is quantum squeezing leading to suppressed quantum fluctuations of photons and atoms. This squeezing is unique because (1) it is realized in the ground state of the system and does not require external driving, and (2) the squeezing can be perfect in the sense that quantum fluctuations of certain observables are completely suppressed. Specifically, we investigate the ground state of the Dicke model, which describes atoms collectively coupled to a single photonic mode, and we found that the photon–atom fluctuation vanishes at the onset of the superradiant phase transition in the thermodynamic limit of an infinite number of atoms. Moreover, when a finite number of atoms is considered, the variance of the fluctuation around the critical point asymptotically converges to zero, as the number of atoms is increased. In contrast to the squeezed states of flying photons obtained using standard generation protocols with external driving, the squeezing obtained in the ground state of the ultrastrongly coupled photon–atom systems is resilient against unpredictable noise.

Document Details

Document Type
Pub Defense Publication
Publication Date
Feb 13, 2023
Source ID
10.1038/s41598-023-29202-x

Entities

People

  • Diego Fallas Padilla
  • Han Pu
  • Junichiro Kono
  • Kenji Hayashida
  • Motoaki Bamba
  • Nicolas Marquez Peraca
  • Takuma Makihara

Organizations

  • Army Research Office
  • National Science Foundation
  • Robert A. Welch Foundation

Tags

Fields of Study

  • Physics

Readers

  • Quantum spin resonance or Electron Paramagnetic Resonance spectroscopy.

Technology Areas

  • Quantum Computing
  • Quantum Science - Quantum Dots