Photon acceleration of high-intensity vector vortex beams into the extreme ultraviolet
Abstract
Extreme ultraviolet (XUV) light sources allow for the probing of bound electron dynamics on attosecond scales, interrogation of high-energy-density matter, and access to novel regimes of strong-field quantum electrodynamics. Despite the importance of these applications, coherent XUV sources remain relatively rare, and those that do exist are limited in their peak intensity and spatio-polarization structure. Here, we demonstrate that photon acceleration of an optical vector vortex pulse in the moving density gradient of an electron beam-driven plasma wave can produce a high-intensity, tunable-wavelength XUV pulse with the same vector vortex structure as the original pulse. Quasi-3D, boosted-frame particle-in-cell simulations show the transition of optical vector vortex pulses with 800-nm wavelengths and intensities below W/cm to XUV vector vortex pulses with 36-nm wavelengths and intensities exceeding W/cm over a distance of 1.2 cm. The XUV pulses have sub-femtosecond durations and nearly flat phase fronts. The production of such high-quality, high-intensity XUV vector vortex pulses could expand the utility of XUV light as a diagnostic and driver of novel light-matter interactions.
Cite
@article{arxiv.2411.04258,
title = {Photon acceleration of high-intensity vector vortex beams into the extreme ultraviolet},
author = {Kyle G. Miller and Jacob R. Pierce and Fei Li and Brandon K. Russell and Warren B. Mori and Alexander G. R. Thomas and John P. Palastro},
journal= {arXiv preprint arXiv:2411.04258},
year = {2024}
}
Comments
25 pages, 5 figures, planned submission to scientific journal