English

Artificial quantum thermal bath: Engineering temperature for a many-body quantum system

Quantum Physics 2016-11-09 v2 Statistical Mechanics Superconductivity

Abstract

Temperature determines the relative probability of observing a physical system in an energy state when that system is energetically in equilibrium with its environment. In this paper, we present a theory for engineering the temperature of a quantum system different from its ambient temperature. We define criteria for an engineered quantum bath that, when coupled to a quantum system with Hamiltonian HH, drives the system to the equilibrium state eH/TTr(eH/T)\frac{e^{-H/T}}{{{\rm{Tr}}}(e^{-H/T})} with a tunable parameter TT. This is basically an analog counterpart of the digital quantum metropolis algorithm. For a system of superconducting qubits, we propose a circuit-QED approximate realization of such an engineered thermal bath consisting of driven lossy resonators. Our proposal opens the path to simulate thermodynamical properties of many-body quantum systems of size not accessible to classical simulations. Also we discuss how an artificial thermal bath can serve as a temperature knob for a hybrid quantum-thermal annealer.

Keywords

Cite

@article{arxiv.1510.04354,
  title  = {Artificial quantum thermal bath: Engineering temperature for a many-body quantum system},
  author = {Alireza Shabani and Hartmut Neven},
  journal= {arXiv preprint arXiv:1510.04354},
  year   = {2016}
}

Comments

10 pages, 3 figures, extended published version

R2 v1 2026-06-22T11:20:46.930Z