Expand this Topic clickable element to expand a topic
Skip to content
Optica Publishing Group
  • 2019 Conference on Lasers and Electro-Optics Europe and European Quantum Electronics Conference
  • OSA Technical Digest (Optica Publishing Group, 2019),
  • paper cf_8_5

Soliton Self-Compression and UV Dispersive Wave Emission in Compact Hollow Capillary Systems

Not Accessible

Your library or personal account may give you access

Abstract

Soliton dynamics underlie a wide range of phenomena in nonlinear fibre optics. In particular, higher-order solitons in gas-filled hollow-core photonic crystal fibre (HC-PCF) have been applied to self-compression of ultrafast laser pulses [1] and the generation of widely tuneable resonant dispersive waves (RDW) from the vacuum ultraviolet (VUV) to the visible spectral range [2]. We recently demonstrated that by moving to long, large-core hollow capillary fibres (HCF) and shorter driving pulses, these effects can be scaled by up to three orders of magnitude in pulse energy, providing unprecedented peak power in ultrafast VUV pulses as well as a route towards terawatt-scale optical attosecond pulses [3]. Here we show that by further decreasing the initial pulse duration, high-energy soliton dynamics can be obtained in HCF as short as 35 cm.

© 2019 IEEE

PDF Article
More Like This
Soliton-plasma Interactions and Dispersive-wave Emission Beyond Two-photon Resonances in Gas-filled Hollow Capillary Fibres

Teodora Grigorova, Christian Brahms, Federico Belli, and John C. Travers
ee_5_3 European Quantum Electronics Conference (EQEC) 2019

Soliton Self-Compression in Hollow Capillary Fibres

John C. Travers, Teodora Grigorova, Christian Brahms, and Federico Belli
cf_4_2 The European Conference on Lasers and Electro-Optics (CLEO/Europe) 2019

Ultrafast Deep and Vacuum Ultraviolet Gas-Filled Hollow-Core Fibre Sources for Time-Resolved Photoelectron Spectroscopy

Federico Belli, Nikoleta Kotsina, Shou-fei Gao, Ying-ying Wang, Pu Wang, John C. Travers, and Dave Townsend
ee_5_1 European Quantum Electronics Conference (EQEC) 2019

Select as filters


Select Topics Cancel
© Copyright 2024 | Optica Publishing Group. All rights reserved, including rights for text and data mining and training of artificial technologies or similar technologies.