English

Plasma mirrors as a path to the Schwinger limit

Optics 2020-07-13 v1 Plasma Physics

Abstract

Reaching light intensities above 102510^{25} W/cm2^{2} and up to the Schwinger limit (102910^{29} W/cm2^{2}) would enable testing decades-old fundamental predictions of Quantum Electrodynamics. A promising yet challenging approach to achieve such extreme fields consists in reflecting a high-power femtosecond laser pulse off a curved relativistic mirror. This enhances the intensity of the reflected beam by simultaneously compressing it in time down to the attosecond range, and focusing it to sub-micron focal spots. Here we show that such curved relativistic mirrors can be produced when an ultra-intense laser pulse ionizes a solid target and creates a dense plasma that specularly reflects the incident light. This is evidenced by measuring for the first time the temporal and spatial effects induced on the reflected beam by this so-called 'plasma mirror'. The all-optical measurement technique demonstrated here will be instrumental for the use of relativistic plasma mirrors with the emerging generation of Petawatt lasers, which constitutes a viable experimental path to the Schwinger limit.

Keywords

Cite

@article{arxiv.2007.05325,
  title  = {Plasma mirrors as a path to the Schwinger limit},
  author = {L. Chopineau and A. Denoeud and A. Leblanc and E. Porat and Ph. Martin and H. Vincenti and F. Quéré},
  journal= {arXiv preprint arXiv:2007.05325},
  year   = {2020}
}

Comments

7 pages, 4 figures

R2 v1 2026-06-23T17:00:59.249Z