DOE OSTI · 2507385
Comparative study of spectral broadening and few-cycle compression of Yb:KGW laser pulses in gas-filled hollow-core fibers
Abstract
While industrial-grade Yb-based amplifiers have become very prevalent, their limited gain bandwidth has created a large demand for robust spectral broadening techniques that allow for few-cycle pulse compression. In this work, we perform a comparative study between several atomic and molecular gases as media for spectral broadening in a hollow-core fiber geometry. Exploiting nonlinearities such as self-phase modulation, self-steepening, and stimulated Raman scattering, we explore the extent of spectral broadening and its dependence on gas pressure, the critical power for self-focusing, and the optimal regime for few-cycle pulse compression. Using a 3-mJ, 200-fs input laser pulses, we achieve 17 fs, few-cycle pulses with 80% fiber energy transmission efficiency. The optimal parameters can be scaled for higher or lower input pulse energies with appropriate gas parameters and fiber geometry.
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Shalaby, Islam (ORCID:0000000332846636), McDonnell, Michael (ORCID:0000000208012001), Murphy, Colin, Chakraborty, Nisnat, Gray, Kody (ORCID:0009000025510152), Wood, James (ORCID:0000000251960875), Biswas, Dipayan, Sandhu, Arvinder (ORCID:000000027876855X). 2025-01-29. Comparative study of spectral broadening and few-cycle compression of Yb:KGW laser pulses in gas-filled hollow-core fibers. https://doi.org/10.1364/optcon.550744
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