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arXiv:2506.02832·v2·Plasma Physics

Testing strong-field QED with the avalanche precursor

A. A. Mironov🇫🇷 · S. S. Bulanov🇺🇸 · A. Di Piazza🇺🇸 · M. Grech🇫🇷 · L. Lancia🇫🇷 · S. Meuren🇫🇷 · J. Palastro🇺🇸 · C. Riconda🇫🇷 · H. G. Rinderknecht🇺🇸 · P. Tzeferacos🇺🇸 · G. Gregori🇬🇧

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Abstract

A two-beam high-power laser facility is essential for the study of one of the most captivating phenomena predicted by strong-field quantum electrodynamics (QED) and yet unobserved experimentally: the avalanche-type cascade. In such a cascade, the energy of intense laser light can be efficiently transformed into high-energy radiation and electron-positron pairs. The future 50-petawatt-scale laser facility NSF OPAL will provide unique opportunities for studying such strong-field QED effects, as it is designed to deliver two ultra-intense, tightly focused laser pulses onto the interaction point. In this work, we investigate the potential of such a facility for studying elementary particle and plasma dynamics deeply in the quantum radiation-dominated regime, and the generation of QED avalanches. With 3D particle-in-cell simulations, we demonstrate that QED avalanche precursors can be reliably triggered under realistic laser parameters and layout (namely, focusing , tilted optical axes, and non-ideal co-pointing) with the anticipated capabilities of NSF OPAL. We demonstrate that seed electrons can be efficiently injected into the laser focus by using targets of three types: a gas of heavy atoms, an overcritical plasma, and a thin foil. A strong positron and high-energy photon signal is generated in all cases. The cascade properties can be identified from the final particle distributions, which have a clear directional pattern. At increasing laser field intensity, such distributions provide signatures of the transition, first, to the radiation-dominated interaction regime, and then to a QED avalanche. Our findings can also be used for designing related future experiments.

Comments: 22 pages, 12 figures, 3 tables

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