Published September 9, 2024 | Version v1
Journal article

Real-space thermalization of locally driven quantum magnets

  • 1. Department of Physics, Florida State University, Tallahassee, Florida 32306, USA
  • 2. National High Magnetic Field Laboratory, Tallahassee, Florida 32310, USA
  • 3. Department of Physics and Astronomy, University College London, London WC1E 6BT, United Kingdom

Description

The study of thermalization and its breakdown in isolated systems has led to a deeper understanding of nonequilibrium quantum states and their dependence on initial conditions. The role of initial conditions is prominently highlighted by the existence of quantum many-body scars, special athermal states with an underlying effective superspin structure, embedded in an otherwise chaotic many-body spectrum. Spin Heisenberg and XXZ models and their variants in one and higher dimension have been shown to host exact quantum many-body scars, exhibiting perfect revivals of spin helix states that are realizable in synthetic and condensed matter systems. Motivated by these advances, we propose experimentally accessible, local, time-dependent protocols to explore the spatial thermalization profile and highlight how different parts of the system thermalize and affect the fate of the superspin. We identify distinct parametric regimes for the ferromagnetic (X-polarized) initial state based on the interplay between the driven spin and the rest, including local athermal behavior where the driven spin effectively decouples, acting like a "cold" spot while being instrumental in heating up the other spins. We also identify parameter regimes where the superspin remains resilient to local driving for long timescales. We develop a real- and Floquet-space picture that explains our numerical observations, and make predictions that can be tested in various experimental setups.

Additional details

Identifiers

DOI
10.1103/PhysRevB.110.104304;
arXiv
arXiv:2212.13790;
Crossref Funder ID
10.13039/100006597; 10.13039/100000001; 10.13039/501100000781;

Publishing Information

Journal Title
Physical Review B
Journal Volume
110
Journal Issue
10
Journal Page Range
11 pgs.
ISSN
1550-235X

Optional Information

Copyright
©2024 American Physical Society
Contract/Grant/Project number
DMR-1644779; DMR-2128556; 853368
Notes
Record automatically processed
Funding organization
Florida State University; National Science Foundation; European Research Council