English

A Lorentz-Covariant Interacting Electron-Photon System in One Space Dimension

Mathematical Physics 2020-12-02 v2 Analysis of PDEs math.MP Quantum Physics

Abstract

A Lorenz-covariant system of wave equations is formulated for a quantum-mechanical two-body system in one space dimension, comprised of one electron and one photon. Manifest Lorentz covariance is achieved using Dirac's formalism of multi-time wave functions, i.e., wave functions Ψ(xph,xel)\Psi(\mathbf{x}_{{ph}},\mathbf{x}_{{el}}) where xel,xph\mathbf{x}_{{el}},\mathbf{x}_{{ph}} are the generic spacetime events of the electron and photon, respectively. Their interaction is implemented via a Lorentz-invariant no-crossing-of-paths boundary condition at the coincidence submanifold {xel=xph}\{\mathbf{x}_{{el}}=\mathbf{x}_{{ph}}\}, compatible with particle current conservation. The corresponding initial-boundary-value problem is proved to be well-posed. Electron and photon trajectories are shown to exist globally in a Hypersurface Bohm--Dirac theory, for typical particle initial conditions. Also presented are the results of some numerical experiments which illustrate Compton scattering as well as a new phenomenon: photon capture and release by the electron.

Keywords

Cite

@article{arxiv.1906.03632,
  title  = {A Lorentz-Covariant Interacting Electron-Photon System in One Space Dimension},
  author = {Michael K. -H. Kiessling and Matthias Lienert and A. Shadi Tahvildar-Zadeh},
  journal= {arXiv preprint arXiv:1906.03632},
  year   = {2020}
}

Comments

36 pages, 9 figures. Revised version; accepted for publication in Lett. Math. Phys. The copyright of the published version has been transferred to Springer

R2 v1 2026-06-23T09:48:06.833Z