HEWES: Heisenberg-Euler Weak-Field Expansion Simulator
arXiv:2202.09680 · doi:10.1016/j.simpa.2023.100481
Abstract
Vacuum polarization, a key prediction of quantum theory, can cause a variety of intriguing phenomena that can be triggered by high-intensity laser pulses. The Heisenberg-Euler theory of the quantum vacuum supplements Maxwell's theory of electromagnetism with nonlinear photon-photon interactions mediated by vacuum fluctuations. This work presents a numerical solver for the leading weak-field Heisenberg-Euler corrections. The present code implementation reaches an accuracy of order thirteen in the numerical scheme and takes into account up to six-photon interactions. Since theoretical approaches are limited to approximations and the experimental requirements for signal detection are high, the need for support from the numerical side is apparent.
7 pages, 6 figures; journal version
References in corpus (7)
- Measurement of the Positive Muon Anomalous Magnetic Moment to 0.46 ppm
- The anomalous magnetic moment of the muon in the Standard Model
- Leading hadronic contribution to the muon magnetic moment from lattice QCD
- Enabling New Flexibility in the SUNDIALS Suite of Nonlinear and Differential/Algebraic Equation Solvers
- Exploring high-intensity QED at ELI
- Strong laser fields as a probe for fundamental physics
- Probing Physics in Vacuum Using an X-ray Free-Electron Laser, a High-Power Laser, and a High-Field Magnet