English

Thermal States of Anyonic Systems

Mesoscale and Nanoscale Physics 2010-01-25 v1 Quantum Physics

Abstract

A study of the thermal properties of two-dimensional topological lattice models is presented. This work is relevant to assess the usefulness of these systems as a quantum memory. For our purposes, we use the topological mutual information ItopoI_{\mathrm{topo}} as a "topological order parameter". For Abelian models, we show how ItopoI_{\mathrm{topo}} depends on the thermal topological charge probability distribution. More generally, we present a conjecture that ItopoI_{\mathrm{topo}} can (asymptotically) be written as a Kullback-Leitner distance between this probability distribution and that induced by the quantum dimensions of the model at hand. We also explain why ItopoI_{\mathrm{topo}} is more suitable for our purposes than the more familiar entanglement entropy StopoS_{\mathrm{topo}}. A scaling law, encoding the interplay of volume and temperature effects, as well as different limit procedures, are derived in detail. A non-Abelian model is next analysed and similar results are found. Finally, we also consider, in the case of a one-plaquette toric code, an environment model giving rise to a simulation of thermal effects in time.

Keywords

Cite

@article{arxiv.0812.4975,
  title  = {Thermal States of Anyonic Systems},
  author = {S. Iblisdir and D. Perez-Garcia and M. Aguado and J. Pachos},
  journal= {arXiv preprint arXiv:0812.4975},
  year   = {2010}
}
R2 v1 2026-06-21T11:56:27.506Z