Repository logo

Infoscience

  • English
  • French
Log In
Logo EPFL, École polytechnique fédérale de Lausanne

Infoscience

  • English
  • French
Log In
  1. Home
  2. Academic and Research Output
  3. Journal articles
  4. Engineering random spin models with atoms in a high-finesse cavity
 
research article

Engineering random spin models with atoms in a high-finesse cavity

Sauerwein, Nick  
•
Orsi, Francesca  
•
Uhrich, Philipp
Show more
May 4, 2023
Nature Physics

Random spin models play a key role in our understanding of disorder and complex many-body systems. Two all-to-all interacting, disordered models have now been realized using a cavity quantum electrodynamics platform.

All-to-all interacting, disordered quantum many-body models have a wide range of applications across disciplines, from spin glasses in condensed-matter physics over holographic duality in high-energy physics to annealing algorithms in quantum computing. Typically, these models are abstractions that do not find unambiguous physical realizations in nature. Here we realize an all-to-all interacting, disordered spin system by subjecting an atomic cloud in a cavity to a controllable light shift. Adjusting the detuning between atom resonance and cavity mode, we can tune between disordered versions of a central-mode model and a Lipkin-Meshkov-Glick model. By spectroscopically probing the low-energy excitations of the system, we explore the competition of interactions with disorder across a broad parameter range. We show how disorder in the central-mode model breaks the strong collective coupling, making the dark-state manifold cross over to a random distribution of weakly mixed light-matter, 'grey', states. In the Lipkin-Meshkov-Glick model, the ferromagnetic finite-sized ground state evolves towards a paramagnet as disorder is increased. In that regime, semi-localized eigenstates emerge, as we observe by extracting bounds on the participation ratio. These results present substantial steps towards freely programmable cavity-mediated interactions for the design of arbitrary spin Hamiltonians.

  • Details
  • Metrics
Type
research article
DOI
10.1038/s41567-023-02033-3
Web of Science ID

WOS:000981353200005

Author(s)
Sauerwein, Nick  
Orsi, Francesca  
Uhrich, Philipp
Bandyopadhyay, Soumik
Mattiotti, Francesco
Cantat-Moltrecht, Tigrane  
Pupillo, Guido
Hauke, Philipp
Brantut, Jean-Philippe  
Date Issued

2023-05-04

Publisher

NATURE PORTFOLIO

Published in
Nature Physics
Subjects

Physics, Multidisciplinary

•

Physics

•

quantum phase-transition

•

many-body localization

•

anderson localization

•

ultracold atoms

•

simulations

•

gas

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LQG  
Available on Infoscience
June 5, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/198095
Logo EPFL, École polytechnique fédérale de Lausanne
  • Contact
  • infoscience@epfl.ch

  • Follow us on Facebook
  • Follow us on Instagram
  • Follow us on LinkedIn
  • Follow us on X
  • Follow us on Youtube
AccessibilityLegal noticePrivacy policyCookie settingsEnd User AgreementGet helpFeedback

Infoscience is a service managed and provided by the Library and IT Services of EPFL. © EPFL, tous droits réservés