Comparison of wave-mixing processes in rarefied gas and QED vacuum using numerical simulations
arXiv:2509.22894 · doi:10.1103/gdw7-xb94
Abstract
We study the conditions required to distinguish laser-induced nonlinear quantum electrodynamics (QED) effects in vacuum from competing signals due to interactions of laser pulses with ionized residual gas. The latter is inevitably present in vacuum chambers where experiments are performed because the vacuum is never perfect and there is always some residual pressure. The rarefied gas contribution is modeled statistically using the 1D-1V Vlasov-Maxwell system, while vacuum nonlinearities are described within the weak-field expansion of the Heisenberg-Euler effective action. In both cases, photon spectra from wave-mixing processes are evaluated by solving numerically the resulting partial differential equations using a semi-Lagrangian scheme. We consider short pulses in co- and counter-propagating configurations, allowing us to identify the laser intensities and vacuum pressures for which the vacuum signal dominates. These results provide quantitative guidance for future all-optical experiments aiming to detect light-by-light scattering in vacuum.
16 pages, 10 figures
References in corpus (17)
- Advances in QED with intense background fields
- Quantum radiation reaction effects in multiphoton Compton scattering
- Search for Stimulated Photon-Photon Scattering in Vacuum
- Photon-photon scattering in collisions of laser pulses
- Double-slit vacuum polarisation effects in ultra-intense laser fields
- Probing vacuum polarization effects with high-intensity lasers
- Analysis of four-wave mixing of high-power lasers for the detection of elastic photon-photon scattering
- Probing Physics in Vacuum Using an X-ray Free-Electron Laser, a High-Power Laser, and a High-Field Magnet
- Quantum reflection of photons off spatio-temporal electromagnetic field inhomogeneities
- An experiment of X-ray photon-photon elastic scattering with a Laue-case beam collider
- Letter of Intent: Towards a Vacuum Birefringence Experiment at the Helmholtz International Beamline for Extreme Fields
- Scheme for the detection of mixing processes in vacuum
- Quantum vacuum signatures in multi-color laser pulse collisions
- Towards a direct measurement of the quantum vacuum Lagrangian coupling coefficients using two counter propagating super-intense laser pulses
- Experimental estimates of the photon background in a potential light-by-light scattering study
- Numerical Simulations of the Nonlinear Quantum Vacuum in the Heisenberg-Euler Weak-Field Expansion
- A dark-field setup for the measurement of light-by-light scattering with high-intensity lasers