English

Self-interfering high harmonic beam arrays driven by Hermite-Gaussian beams

Optics 2025-04-10 v2

Abstract

The use of structured light to drive highly nonlinear processes in matter not only enables imprinting spatially-resolved properties onto short-wavelength radiation, but also opens alternative avenues for exploring the dynamics of nonlinear laser-matter interactions. In this work, we experimentally and theoretically explore the unique properties of driving high-order harmonic generation (HHG) with Hermite-Gaussian beams. HHG driven by Laguerre-Gauss modes results in harmonics that inherit the azimuthal Laguerre-Gauss modal structure, with their topological charge scaling according to orbital angular momentum conservation. In contrast, when HHG is driven by Hermite-Gauss beams, the harmonic modes do not show a direct correspondence to the driving modal profile. Our experimental measurements using HG0,1_{0,1} and HG1,1_{1,1} modes, which are in excellent agreement with our numerical simulations, show that the lobes of the Hermite-Gauss driving beams effectively produce a set of separate phase-locked harmonic beamlets which can interfere downstream. This self-interference, which can be adjusted through the relative position between the gas target and the driving beam focus, can be exploited for precision extreme-ultraviolet interferometry. We demonstrate a simple application to calibrate the dispersion of an extreme-ultraviolet diffraction grating. In addition, we show through simulations that the array of harmonic beamlets can be used as an illumination source for single-shot extreme-ultraviolet ptychography.

Keywords

Cite

@article{arxiv.2501.09507,
  title  = {Self-interfering high harmonic beam arrays driven by Hermite-Gaussian beams},
  author = {David D. Schmidt and José Miguel Pablos-Marín and Cameron Clarke and Jonathan Barolak and Nathaniel Westlake and Alba de las Heras and Javier Serrano and Sergei Shevtsov and Peter Kazansky and Daniel Adams and Carlos Hernández-García and Charles G. Durfee},
  journal= {arXiv preprint arXiv:2501.09507},
  year   = {2025}
}

Comments

15 pages, 8 figures

R2 v1 2026-06-28T21:08:17.158Z