TY - JOUR
T1 - Self-triggered strong-field QED collisions in laser-plasma interaction
AU - Matheron, Aimé
AU - Andriyash, Igor
AU - Davoine, Xavier
AU - Gremillet, Laurent
AU - Pouyez, Mattys
AU - Grech, Mickael
AU - Lancia, Livia
AU - Ta Phuoc, Kim
AU - Corde, Sébastien
N1 - Publisher Copyright:
© 2025 authors. Published by the American Physical Society.
PY - 2025/7/1
Y1 - 2025/7/1
N2 - Exploring quantum electrodynamics in the most extreme conditions, where electron-positron pairs can emerge in the presence of a strong background field, is now becoming possible in Compton collisions between ultraintense lasers and energetic electrons. In the strong-field regime, the colliding electron emits γ rays that decay into pairs in the strong laser field. While the combination of conventional accelerators and lasers of sufficient power poses significant challenges, laser-plasma accelerators offer a promising alternative for producing the required multi-GeV electron beams. To overcome the complexities of colliding these beams with another ultraintense laser pulse, we propose a scheme in which a single laser pulse both accelerates the electrons and collides with them after self-focusing in a dedicated plasma section and reflecting off a plasma mirror. The laser intensity boost in the plasma allows the quantum interaction parameter to be greatly increased. Using full-scale numerical simulations, we demonstrate that a single 100 J laser pulse can achieve a deep quantum regime with electric fields in the electron rest frame as high as χe ∼ 5 times the Schwinger critical field, resulting in the production of about 40 pC of positrons.
AB - Exploring quantum electrodynamics in the most extreme conditions, where electron-positron pairs can emerge in the presence of a strong background field, is now becoming possible in Compton collisions between ultraintense lasers and energetic electrons. In the strong-field regime, the colliding electron emits γ rays that decay into pairs in the strong laser field. While the combination of conventional accelerators and lasers of sufficient power poses significant challenges, laser-plasma accelerators offer a promising alternative for producing the required multi-GeV electron beams. To overcome the complexities of colliding these beams with another ultraintense laser pulse, we propose a scheme in which a single laser pulse both accelerates the electrons and collides with them after self-focusing in a dedicated plasma section and reflecting off a plasma mirror. The laser intensity boost in the plasma allows the quantum interaction parameter to be greatly increased. Using full-scale numerical simulations, we demonstrate that a single 100 J laser pulse can achieve a deep quantum regime with electric fields in the electron rest frame as high as χe ∼ 5 times the Schwinger critical field, resulting in the production of about 40 pC of positrons.
UR - https://www.scopus.com/pages/publications/105010729900
U2 - 10.1103/PhysRevResearch.7.L032011
DO - 10.1103/PhysRevResearch.7.L032011
M3 - Article
AN - SCOPUS:105010729900
SN - 2643-1564
VL - 7
JO - Physical Review Research
JF - Physical Review Research
IS - 3
M1 - L032011
ER -