English

Quantum Probes for Ohmic Environments at Thermal Equilibrium

Quantum Physics 2019-05-14 v1

Abstract

It is often the case that the environment of a quantum system may be described as a bath of oscillators with Ohmic density of states. In turn, the precise characterization of these classes of environments is a crucial tool to engineer decoherence or to tailor quantum information protocols. Recently, the use of quantum probes in characterizing Ohmic environments at zero-temperature has been discussed, showing that a single qubit provides precise estimation of the cutoff frequency. On the other hand, thermal noise often spoil quantum probing schemes, and for this reason we here extend the analysis to complex system at thermal equilibrium. In particular, we discuss the interplay between thermal fluctuations and time evolution in determining the precision {attainable by} quantum probes. Our results show that the presence of thermal fluctuations degrades the precision for low values of the cutoff frequency, i.e. values of the order ωcT\omega_c \lesssim T (in natural units). For larger values of ωc\omega_c decoherence is mostly due to the structure of environment, rather than thermal fluctuations, such that quantum probing by a single qubit is still an effective estimation procedure.

Keywords

Cite

@article{arxiv.1905.04661,
  title  = {Quantum Probes for Ohmic Environments at Thermal Equilibrium},
  author = {Fahimeh Salari Sehdaran and Matteo Bina and Claudia Benedetti and Matteo G. A. Paris},
  journal= {arXiv preprint arXiv:1905.04661},
  year   = {2019}
}

Comments

Entropy, special issue on Open Quantum Systems (OQS) for quantum technologies (S. Lorenzo and M. G. Palma, Eds)

R2 v1 2026-06-23T09:03:56.129Z