Batch Bayesian optimization of attosecond betatron pulses from laser wakefield acceleration
Journal article, 2026

Laser wakefield acceleration can generate a femtosecond-scale broadband X-ray betatron radiation pulse from electrons accelerated by an intense laser pulse in a plasma. The micrometer-scale of the source makes wakefield betatron radiation well-suited for advanced imaging techniques, including diffraction and phase-contrast imaging. Recent progress in laser technology can expand these capabilities into the attosecond regime, where the practical applications would significantly benefit from the increased energy contained within the pulse. Here we use numerical simulations combined with batch Bayesian optimization to enhance the radiation produced by an attosecond betatron source. The method enables an efficient exploration of a multi-parameter space and identifies a regime in which a plasma density spike triggers the generation of a high-charge electron beam. This results in an improvement of more than one order of magnitude in the on-axis time-averaged power within the central time containing half of the radiated energy, compared to the reference case without the density spike.

Author

Dominika Maslarova

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Albert Hansson

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Mufei Luo

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Vojtech Horny

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Julien Ferri

Institution of physics at Gothenburg University

Istvan Pusztai

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Tünde-Maria Fülöp

Chalmers, Physics, Subatomic, High Energy and Plasma Physics

Communications Physics

23993650 (eISSN)

Vol. 9 1 92

Subject Categories (SSIF 2025)

Atom and Molecular Physics and Optics

Subatomic Physics

DOI

10.1038/s42005-026-02542-6

More information

Latest update

4/13/2026