Quantum diffusion of electromagnetic fields of ultrarelativistic spin-half particles
arXiv:1703.02606 · doi:10.1016/j.nuclphysa.2017.05.104
Abstract
We compute electromagnetic fields created by a relativistic charged spin-half particle in empty space at distances comparable to the particle Compton wavelength. The particle is described as a wave packet evolving according to the Dirac equation. It produces the electromagnetic field that is essentially different from the Coulomb field due to the quantum diffusion effect.
10 pages, 10 figures
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Cited by in corpus (8)
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- Electromagnetic fields from the extended Kharzeev-McLerran-Warringa model in relativistic heavy-ion collisions
- The impact of domain walls on the chiral magnetic effect in hot QCD matter
- Electromagnetic fields from quantum sources in heavy-ion collisions
- Chiral magnetohydrodynamics for heavy-ion collisions
- Continuous evolution of electromagnetic field in heavy-ion collisions