English

Experimental observation of thermalization with noncommuting charges

Quantum Physics 2023-05-04 v3 Statistical Mechanics

Abstract

Quantum simulators have recently enabled experimental observations of quantum many-body systems' internal thermalization. Often, the global energy and particle number are conserved, and the system is prepared with a well-defined particle number - in a microcanonical subspace. However, quantum evolution can also conserve quantities, or charges, that fail to commute with each other. Noncommuting charges have recently emerged as a subfield at the intersection of quantum thermodynamics and quantum information. Until now, this subfield has remained theoretical. We initiate the experimental testing of its predictions, with a trapped-ion simulator. We prepare 6-21 spins in an approximate microcanonical subspace, a generalization of the microcanonical subspace for accommodating noncommuting charges, which cannot necessarily have well-defined nontrivial values simultaneously. We simulate a Heisenberg evolution using laser-induced entangling interactions and collective spin rotations. The noncommuting charges are the three spin components. We find that small subsystems equilibrate to near a recently predicted non-Abelian thermal state. This work bridges quantum many-body simulators to the quantum thermodynamics of noncommuting charges, whose predictions can now be tested.

Keywords

Cite

@article{arxiv.2202.04652,
  title  = {Experimental observation of thermalization with noncommuting charges},
  author = {Florian Kranzl and Aleksander Lasek and Manoj K. Joshi and Amir Kalev and Rainer Blatt and Christian F. Roos and Nicole Yunger Halpern},
  journal= {arXiv preprint arXiv:2202.04652},
  year   = {2023}
}

Comments

6.5 pages (3 figures) + appendices (10 pages); increased system size to 21 qubits; updated to match the version published in PRX Quantum

R2 v1 2026-06-24T09:28:53.505Z