Understanding Nonlinear Pulse Propagation in Liquid Strand-Based Photonic Bandgap Fibers

dc.bibliographicCitation.firstPage305eng
dc.bibliographicCitation.issue3eng
dc.bibliographicCitation.journalTitleCrystals : open access journaleng
dc.bibliographicCitation.volume11eng
dc.contributor.authorQi, Xue
dc.contributor.authorSchaarschmidt, Kay
dc.contributor.authorLi, Guangrui
dc.contributor.authorJunaid, Saher
dc.contributor.authorScheibinger, Ramona
dc.contributor.authorLühder, Tilman
dc.contributor.authorSchmidt, Markus A.
dc.date.accessioned2022-01-18T09:34:55Z
dc.date.available2022-01-18T09:34:55Z
dc.date.issued2021
dc.description.abstractUltrafast supercontinuum generation crucially depends on the dispersive properties of the underlying waveguide. This strong dependency allows for tailoring nonlinear frequency conversion and is particularly relevant in the context of waveguides that include geometry-induced resonances. Here, we experimentally uncovered the impact of the relative spectral distance between the pump and the bandgap edge on the supercontinuum generation and in particular on the dispersive wave formation on the example of a liquid strand-based photonic bandgap fiber. In contrast to its air-hole-based counterpart, a bandgap fiber shows a dispersion landscape that varies greatly with wavelength. Particularly due to the strong dispersion variation close to the bandgap edges, nanometer adjustments of the pump wavelength result in a dramatic change of the dispersive wave generation (wavelength and threshold). Phase-matching considerations confirm these observations, additionally revealing the relevance of third order dispersion for interband energy transfer. The present study provides additional insights into the nonlinear frequency conversion of resonance-enhanced waveguide systems which will be relevant for both understanding nonlinear processes as well as for tailoring the spectral output of nonlinear fiber sources.eng
dc.description.versionpublishedVersioneng
dc.identifier.urihttps://oa.tib.eu/renate/handle/123456789/7840
dc.identifier.urihttps://doi.org/10.34657/6881
dc.language.isoengeng
dc.publisherBasel : MDPIeng
dc.relation.doihttps://doi.org/10.3390/cryst11030305
dc.relation.essn2073-4352
dc.rights.licenseCC BY 4.0 Unportedeng
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/eng
dc.subject.ddc540eng
dc.subject.otherDispersion managementeng
dc.subject.otherDispersive waveeng
dc.subject.otherPhotonic bandgap fibereng
dc.subject.otherResonanceeng
dc.subject.otherSupercontinuum generationeng
dc.titleUnderstanding Nonlinear Pulse Propagation in Liquid Strand-Based Photonic Bandgap Fiberseng
dc.typeArticleeng
dc.typeTexteng
tib.accessRightsopenAccesseng
wgl.contributorIPHTeng
wgl.subjectChemieeng
wgl.typeZeitschriftenartikeleng
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