Resonance-free deep ultraviolet to near infrared supercontinuum generation in a hollow-core antiresonant fibre

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Abstract

Supercontinuum generation in the ultraviolet (UV) spectral region is challenging in solid-core optical fibres due to solarisation and photodarkening. Antiresonant hollow-core fibres have overcome this limitation and have been shown to guide UV light at sufficient intensity for UV spectral broadening through nonlinear optics in the filling gas. However, their UV guidance is usually limited by discontinuities caused by the presence of high-loss resonance bands. In this paper, we report on resonance-free supercontinuum generation spanning from the deep UV to the near infrared achieved through modulation instability in an argon-filled antiresonant hollow-core fibre. The fibre was directly fabricated using the stack-and-draw method with a wall thickness of approximately 90 nm, enabling continuous spectral coverage from the deep UV to the near infrared. We also report numerical simulations to investigate the supercontinuum bandwidth and the factors limiting it, finding that the overall dispersion landscape, and associated group-velocity matching of cross-phase modulation interactions, is the dominant constraint on spectral extension.
Original languageEnglish
Article number025019
JournalJournal of Physics: Photonics
Volume7
DOIs
Publication statusPublished - 24 Mar 2025

Bibliographical note

publishing OA

Data Availability Statement

All data that support the findings of this study are included within the article (and any supplementary files).

Acknowledgements

The authors thank Christian Brahms, Jonathan Knight, and David Novoa for useful discussions.

Funding

This work was funded by the United Kingdom's Engineering and Physical Sciences Research Council: Grant Agreement EP/T020903/1. JCT is supported by a Chair in Emerging Technology from the Royal Academy of Engineering and by the Institution of Engineering and Technology (IET) through the IET A F Harvey Engineering Research Prize.

FundersFunder number
Engineering and Physical Sciences Research CouncilEP/T020903/1

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