English

Infrared-safe scattering without photon vacuum transitions and time-dependent decoherence

High Energy Physics - Theory 2021-08-04 v2

Abstract

Scattering in 3+1-dimensional QED is believed to give rise to transitions between different photon vacua. We show that these transitions can be removed by taking into account off-shell modes which correspond to Li\'enard-Wiechert fields of asymptotic states. This makes it possible to formulate scattering in 3+1-dimensional QED on a Hilbert space which furnishes a single representation of the canonical commutation relations (CCR). Different QED selection sectors correspond to inequivalent representations of the photon CCR and are stable under the action of an IR finite, unitary S-matrix. Infrared divergences are cancelled by IR radiation. Using this formalism, we discuss the time-dependence of decoherence and phases of out-going density matrix elements in the presence of classical currents. The results demonstrate that although no information about a scattering process is stored in strictly zero-energy modes of the photon field, entanglement between charged matter and low energy modes increases over time.

Keywords

Cite

@article{arxiv.1810.11477,
  title  = {Infrared-safe scattering without photon vacuum transitions and time-dependent decoherence},
  author = {Dominik Neuenfeld},
  journal= {arXiv preprint arXiv:1810.11477},
  year   = {2021}
}

Comments

23 pages, v2: minor cosmetic changes to the text

R2 v1 2026-06-23T04:54:04.391Z