Near single-cycle pulse generation using a cascaded all-bulk multi-pass cell compression system
Abstract
We experimentally demonstrate the generation of sub-two-cycle optical pulses using a cascaded post-compression scheme based on two bulk multi-pass cells. Starting from 220 fs, 100 J pulses around 1030 nm, sequential spectral broadening and pulse compression reduce the pulse duration first to 50 fs and ultimately to 5.5 fs (1.6 optical cycles) at a central wavelength of 1058 nm. The ultra-broadband spectrum is enabled by a dispersion-controlled cavity. Comprehensive spectral, temporal, and spatial characterization confirms excellent pulse quality. Despite operating the second multi-pass cell at peak powers several hundred times above the critical power for self-focusing in fused silica, no significant spatio-spectral or spatio-temporal distortions are observed, enabling direct use of the compressed 40 J pulses in further experiments. Numerical simulations of the nonlinear spectral broadening show excellent agreement with the experimental results, supporting the underlying physical picture. These findings establish bulk multi-pass cells as an efficient, compact, and robust platform for generating few-cycle pulses with excellent beam quality, offering considerable potential for strong-field and ultrafast applications, including extreme-ultraviolet generation and isolated attosecond pulse production.
Cite
@article{arxiv.2607.29372,
title = {Near single-cycle pulse generation using a cascaded all-bulk multi-pass cell compression system},
author = {Saga Westerberg and Gaspard Beaufort and Sara Rushe Palacios and Melvin Redon and Chen Guo and Miguel Miranda and Cord L. Arnold and Anne-Lise Viotti},
journal= {arXiv preprint arXiv:2607.29372},
year = {2026}
}
Comments
11 pages, 6 figures