arXiv · 2604.09969
Broadband hard X-ray attosecond pulses from extremely chirped electron beams
Abstract
Attosecond pulses from free-electron lasers have opened the doors to atomic site-specific studies of bound electronic dynamics on their natural, sub-femtosecond timescales. Key to their success has been electron beam shaping techniques enabling the generation of sub-femtosecond current spikes with peak currents on the order of 10 kA. We demonstrate in an RF linac the generation of current spikes with extreme chirps on the order of 350 MeV/micron, directly competitive with the chirps expected from beam-driven plasma wakefield accelerators. Leveraging chirp-taper compensation, we use these highly chirped beams to generate hard X-ray attosecond pulses with bandwidths exceeding 30 eV, a factor of two beyond previous demonstrations. We simultaneously present the first explicit experimental evidence of chirp-taper compensation in an attosecond XFEL, finding that optimal tapering improves the bandwidth and pulse energy by factors of two and five, respectively, for our conditions. In addition to the immediate utility of such broadband hard X-ray pulses, electron beams with such extreme chirps can be utilized for unique new experimental modalities by performing further compression after the undulators. Such post-lasing compression can enable subsequent superradiant light emission at longer wavelengths, or direct excitation of quantum systems with the beam's intense space-charge field for unique attosecond pump-probe possibilities.
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River Robles, Veronica Guo, David Cesar, Paris Franz, Aliaksei Halavanau, Alberto Lutman, Takahiro Sato, Sanghoon Song, Nicholas Sudar, Yanwen Sun, Zhen Zhang, Diling Zhu, Agostino Marinelli. 2026-04-11. Broadband hard X-ray attosecond pulses from extremely chirped electron beams. https://doi.org/10.1103/2w1p-jvp1
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