English

A time-frequency approach to relativistic correlations in quantum field theory

Quantum Physics 2019-08-21 v2 High Energy Physics - Theory

Abstract

Moving detectors in relativistic quantum field theories reveal the fundamental entangled structure of the vacuum which manifests, for instance, through its thermal character when probed by a uniformly accelerated detector. In this paper, we propose a general formalism inspired both from signal processing and correlation functions of quantum optics to analyze the response of point-like detectors following a generic, non-stationary trajectory. In this context, the Wigner representation of the first-order correlation of the quantum field is a natural time-frequency tool to understand single-detection events. This framework offers a synthetic perspective on the problem of detection in relativistic theory and allows us to analyze various non-stationary situations (adiabatic, periodic) and how excitations and superpositions are deformed by motion. It opens up interesting perspective on the issue of the definition of particles.

Keywords

Cite

@article{arxiv.1906.01608,
  title  = {A time-frequency approach to relativistic correlations in quantum field theory},
  author = {Benjamin Roussel and Alexandre Feller},
  journal= {arXiv preprint arXiv:1906.01608},
  year   = {2019}
}

Comments

22 pages, 12 figures