English

Thermometry of Strongly Correlated Fermionic Quantum Systems using Impurity Probes

Quantum Physics 2023-05-01 v2 Mesoscale and Nanoscale Physics Quantum Gases Statistical Mechanics Strongly Correlated Electrons

Abstract

We study quantum impurity models as a platform for quantum thermometry. A single quantum spin-1/2 impurity is coupled to an explicit, structured, fermionic thermal environment which we refer to as the environment or bath. We critically assess the thermometric capabilities of the impurity as a probe, when its coupling to the environment is of Ising or Kondo exchange type. In the Ising case, we find sensitivity equivalent to that of an idealized two-level system, with peak thermometric performance obtained at a temperature that scales linearly in the applied control field, independent of the coupling strength and environment spectral features. By contrast, a richer thermometric response can be realized for Kondo impurities, since strong probe-environment entanglement can then develop. At low temperatures, we uncover a regime with a universal thermometric response that is independent of microscopic details, controlled only by the low-energy spectral features of the environment. The many-body entanglement that develops in this regime means that low-temperature thermometry with a weakly applied control field is inherently less sensitive, while optimal sensitivity is recovered by suppressing the entanglement with stronger fields.

Keywords

Cite

@article{arxiv.2212.09618,
  title  = {Thermometry of Strongly Correlated Fermionic Quantum Systems using Impurity Probes},
  author = {George Mihailescu and Steve Campbell and Andrew K. Mitchell},
  journal= {arXiv preprint arXiv:2212.09618},
  year   = {2023}
}

Comments

16 pages, 5 figures. Close to published version

R2 v1 2026-06-28T07:42:39.483Z