Higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibers

Abstract Supercontinuum generation enabled a series of key technologies such as frequency comb sources, ultrashort pulse sources in the ultraviolet or the mid-infrared, as well as broadband light sources for spectroscopic methods in biophotonics. Recent advances utilizing higher-order modes have sho...

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Main Authors: Ramona Scheibinger, Niklas M. Lüpken, Mario Chemnitz, Kay Schaarschmidt, Jens Kobelke, Carsten Fallnich, Markus A. Schmidt
Format: Article
Language:English
Published: Nature Publishing Group 2021-03-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-84397-1
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spelling doaj-763214327e63486fb933df6c4d239ad62021-03-11T12:25:54ZengNature Publishing GroupScientific Reports2045-23222021-03-0111111110.1038/s41598-021-84397-1Higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibersRamona Scheibinger0Niklas M. Lüpken1Mario Chemnitz2Kay Schaarschmidt3Jens Kobelke4Carsten Fallnich5Markus A. Schmidt6Leibniz Institute of Photonic TechnologyInstitute of Applied Physics, University of MünsterINRS-EMTLeibniz Institute of Photonic TechnologyLeibniz Institute of Photonic TechnologyInstitute of Applied Physics, University of MünsterLeibniz Institute of Photonic TechnologyAbstract Supercontinuum generation enabled a series of key technologies such as frequency comb sources, ultrashort pulse sources in the ultraviolet or the mid-infrared, as well as broadband light sources for spectroscopic methods in biophotonics. Recent advances utilizing higher-order modes have shown the potential to boost both bandwidth and modal output distribution of supercontinuum sources. However, the strive towards a breakthrough technology is hampered by the limited control over the intra- and intermodal nonlinear processes in the highly multi-modal silica fibers commonly used. Here, we investigate the ultrafast nonlinear dynamics of soliton-based supercontinuum generation and the associated mode coupling within the first three lowest-order modes of accurately dispersion-engineered liquid-core fibers. By measuring the energy-spectral evolutions and the spatial distributions of the various generated spectral features polarization-resolved, soliton fission and dispersive wave formation are identified as the origins of the nonlinear broadening. Measured results are confirmed by nonlinear simulations taking advantage of the accurate modeling capabilities of the ideal step-index geometry of our liquid-core platform. While operating in the telecommunications domain, our study allows further advances in nonlinear switching in emerging higher-order mode fiber networks as well as novel insights into the sophisticated nonlinear dynamics and broadband light generation in pre-selected polarization states.https://doi.org/10.1038/s41598-021-84397-1
collection DOAJ
language English
format Article
sources DOAJ
author Ramona Scheibinger
Niklas M. Lüpken
Mario Chemnitz
Kay Schaarschmidt
Jens Kobelke
Carsten Fallnich
Markus A. Schmidt
spellingShingle Ramona Scheibinger
Niklas M. Lüpken
Mario Chemnitz
Kay Schaarschmidt
Jens Kobelke
Carsten Fallnich
Markus A. Schmidt
Higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibers
Scientific Reports
author_facet Ramona Scheibinger
Niklas M. Lüpken
Mario Chemnitz
Kay Schaarschmidt
Jens Kobelke
Carsten Fallnich
Markus A. Schmidt
author_sort Ramona Scheibinger
title Higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibers
title_short Higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibers
title_full Higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibers
title_fullStr Higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibers
title_full_unstemmed Higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibers
title_sort higher-order mode supercontinuum generation in dispersion-engineered liquid-core fibers
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-03-01
description Abstract Supercontinuum generation enabled a series of key technologies such as frequency comb sources, ultrashort pulse sources in the ultraviolet or the mid-infrared, as well as broadband light sources for spectroscopic methods in biophotonics. Recent advances utilizing higher-order modes have shown the potential to boost both bandwidth and modal output distribution of supercontinuum sources. However, the strive towards a breakthrough technology is hampered by the limited control over the intra- and intermodal nonlinear processes in the highly multi-modal silica fibers commonly used. Here, we investigate the ultrafast nonlinear dynamics of soliton-based supercontinuum generation and the associated mode coupling within the first three lowest-order modes of accurately dispersion-engineered liquid-core fibers. By measuring the energy-spectral evolutions and the spatial distributions of the various generated spectral features polarization-resolved, soliton fission and dispersive wave formation are identified as the origins of the nonlinear broadening. Measured results are confirmed by nonlinear simulations taking advantage of the accurate modeling capabilities of the ideal step-index geometry of our liquid-core platform. While operating in the telecommunications domain, our study allows further advances in nonlinear switching in emerging higher-order mode fiber networks as well as novel insights into the sophisticated nonlinear dynamics and broadband light generation in pre-selected polarization states.
url https://doi.org/10.1038/s41598-021-84397-1
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