Towards a direct measurement of the quantum vacuum Lagrangian coupling coefficients using two counter propagating super-intense laser pulses
arXiv:2112.08302 · doi:10.1088/1367-2630/ac51a7
Abstract
In this paper we will show that photon-photon collision experiments using extreme lasers can provide measurable effects giving fundamental information about the essence of QED, its Lagrangian. A possible scenario with two counterpropagating ultraintense lasers for an experiment to detect scattering between optical photons is analyzed. We discuss the importance of the pulse widths and waists, the best scenario for overlapping the beams and signal detection, as well as ways to distinguish the signal from the noise. This would need a high-precision measurement, with control of temporal jitter and noise. We conclude that such experiment is barely feasible at 10^{23} W/cm^2 and very promising at 10^{24} W/cm^2
References in corpus (9)
- LIGO: The Laser Interferometer Gravitational-Wave Observatory
- Dark matter and the early Universe: a review
- Evidence for vacuum birefringence from the first optical polarimetry measurement of the isolated neutron star RX\, J1856.53754
- Search for Stimulated Photon-Photon Scattering in Vacuum
- Probing vacuum polarization effects with high-intensity lasers
- Detecting photon-photon scattering in vacuum at exawatt lasers
- Probing Physics in Vacuum Using an X-ray Free-Electron Laser, a High-Power Laser, and a High-Field Magnet
- The DeLLight experiment to observe an optically-induced change of the vacuum index
- An experiment of X-ray photon-photon elastic scattering with a Laue-case beam collider