Dispersive Properties of Plasma Diffraction Gratings: Towards Plasma-Based Laser Pulse Compression
Abstract
The standard architecture for a high-peak-power femtosecond laser is chirped pulse amplification using diffraction gratings for compression; the damage threshold of the compression gratings limits current lasers to multi-petawatt peak power. Plasma gratings have orders-of-magnitude higher damage tolerance than conventional optics, so plasma gratings with sufficiently high optical quality could allow the construction of ultra-high-power femtosecond lasers. Here, we present experimental measurements of the angular dispersion, angular bandwidth, and diffraction angles of ionization-based plasma transmission gratings and show that both the dispersive and the diffractive properties of these gratings are in close agreement with optical theory and simulations. Gratings with a period of 10.2 microns are found to have an angular dispersion of approximately 0.005 degrees/nm. The dispersion and bandwidth of these gratings suggest plausible designs for a plasma-grating-based compressor and indicate a pathway to compact lasers with petawatt to exawatt peak power.
Cite
@article{arxiv.2604.27165,
title = {Dispersive Properties of Plasma Diffraction Gratings: Towards Plasma-Based Laser Pulse Compression},
author = {Victor M. Perez-Ramirez and Michelle M. Wang and Ke Ou and Sida Cao and Devdigvijay Singh and Nicholas M. Fasano and Vedin Dewan and Andreas M. Giakas and Arunava Das and Isabelle Tigges-Green and Pierre Michel and Julia M. Mikhailova and Matthew R. Edwards},
journal= {arXiv preprint arXiv:2604.27165},
year = {2026}
}
Comments
9 pages, 6 figures