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On the upper limit of laser intensity attainable in non-ideal vacuum

Plasma Physics 2020-12-01 v1 Optics

Abstract

The upper limit of the laser field strength in perfect vacuum is usually considered as the Schwinger field, corresponding to ~10^29W/cm^2. We investigate such limitations under realistic non-ideal vacuum conditions and find out that intensity suppression appears starting from 10^25W/cm^2, showing an upper threshold at 1026W/cm^2 level if the residual electron density in chamber surpasses 109cm^-^3. This is because the presence of residual electrons triggers the avalanche of quantum-electrodynamics cascade that creates copious electron and positron pairs. The leptons are further trapped within the driving laser field due to radiation-reaction, which significantly depletes the laser energy. The relationship between the attainable intensity and the vacuity is given according to particle-in-cell simulations and theoretical analysis. These results answer a critical problem on the achievable light intensity based on present vacuum conditions and provide a guideline for future 100's-Petawatt class laser development.

Keywords

Cite

@article{arxiv.2011.14656,
  title  = {On the upper limit of laser intensity attainable in non-ideal vacuum},
  author = {Yitong Wu and Liangliang Ji and Ruxin Li},
  journal= {arXiv preprint arXiv:2011.14656},
  year   = {2020}
}

Comments

10 pages, 4 figures