4.7 Article

Glassy Dynamics in a Disordered Heisenberg Quantum Spin System

期刊

PHYSICAL REVIEW X
卷 11, 期 1, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevX.11.011011

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资金

  1. DFG Collaborative Research Centre SFB 1225 (ISOQUANT)
  2. DFG Priority Program GiRyd 1929
  3. European Union [640378, 817482]
  4. Heidelberg Center for Quantum Dynamics
  5. Investissements d'Avenir program through the Excellence Initiative of the University of Strasbourg (IdEx)
  6. Heidelberg University (LGFG)
  7. Brazilian fund Ciencia sem Fronteiras
  8. Deutsche Forschungsgesellschaft (DFG, German Research Foundation) [EXC2181/1-390900948]

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This study observed anomalous relaxation dynamics in disordered quantum systems, where relaxation originates from the buildup of nonclassical correlations. The research found that the evolution towards a randomized state is independent of the strength of disorder, hinting towards a unifying description of relaxation dynamics in disordered isolated quantum systems.
Understanding the dynamics of strongly interacting disordered quantum systems is one of the most challenging problems in modern science, due to features such as the breakdown of thermalization and the emergence of glassy phases of matter. We report on the observation of anomalous relaxation dynamics in an isolated XXZ quantum spin system realized by an ultracold gas of atoms initially prepared in a superposition of two different Rydberg states. The total magnetization is found to exhibit subexponential relaxation analogous to classical glassy dynamics, but in the quantum case this relaxation originates from the buildup of nonclassical correlations. In both experiment and semiclassical simulations, we find the evolution toward a randomized state is independent of the strength of disorder up to a critical value. This hints toward a unifying description of relaxation dynamics in disordered isolated quantum systems, analogous to the generalization of statistical mechanics to out-of-equilibrium scenarios in classical spin glasses.

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