Applicability of the Klein-Gordon equation for pair production in vacuum and plasma
arXiv:2305.10106 · doi:10.1103/PhysRevE.108.055205
Abstract
In this paper, a phase-space description of electron-positron pair-creation will be applied, based on a Wigner transformation of the Klein-Gordon equation. The resulting theory is similar in many respects to the equations from the Dirac-Heisenberg-Wigner formalism. However, in the former case, all physics related to particle spin is neglected. In the present paper we compare the pair-production rate in vacuum and plasmas, with and without spin effects, in order to evaluate the accuracy and applicability of the spinless approximation. It is found that for modest frequencies of the electromagnetic field, the pair production rate of the Klein-Gordon theory is a good approximation to the Dirac theory, provided the matter density is small enough for Pauli blocking to be neglected, and a factor of two related to the difference in the vacuum energy density is compensated for.
References in corpus (9)
- Advances in QED with intense background fields
- Schwinger pair production in space- and time-dependent electric fields: Relating the Wigner formalism to quantum kinetic theory
- On the effect of time-dependent inhomogeneous magnetic fields on the particle momentum spectrum in electron-positron pair production
- Pair production in temporally and spatially oscillating fields
- On the kinetic equation approach to pair production by time-dependent electric field
- Plasma dynamics at the Schwinger limit and beyond
- Spacetime-dependent electric field effects in vacuum and plasma using the Wigner-formalism
- Linear pair creation damping of high frequency plasma oscillation
- Klein-Gordon Equation in Hydrodynamical Form