Laser-assisted rapid prototyping of silica optical fibers functionalized with nanodiamonds and multiple active rare earth dopants

2025
journal article
article
dc.abstract.enWe present a rapid prototyping method for functionalized silica optical fibers, leveraging laser-assisted preform manufacturing combined with powder-in-tube and sol-gel dip-coating techniques. Laser vitrification enables precise thermal control through an ultra-thin heat blade characterized by localized heating and steep temperature gradients, facilitating high-quality glass formation and the integration of heat-sensitive dopants. We demonstrate three key outcomes: (i) fabrication of Ytterbium-doped active fibers with performance comparable to commercial benchmarks, (ii) development of fibers with fluorescence bandwidths exceeding one octave, doped with multiple rare-earth ions, promising for wide-band telecommunications and ultrashort pulse amplification, and (iii) the first direct doping of silica fibers with nitrogen-vacancy fluorescent nanodiamonds, enabling single-photon quantum emitter integration with the backbone of current information technology networks. Additionally, nanodiamond doping is proposed as a pathway to control the nonlinear refractive index of silica fibers. These findings establish laser-assisted preform fabrication as a versatile and efficient technique for creating advanced optical fibers with innovative functionalities.
dc.affiliationWydział Fizyki, Astronomii i Informatyki Stosowanej : Instytut Fizyki im. Mariana Smoluchowskiego
dc.contributor.authorHänzi, Pascal
dc.contributor.authorPysz, Dariusz
dc.contributor.authorMrózek, Mariusz - 213128
dc.contributor.authorBogdanowicz, Robert
dc.contributor.authorBuczyński, Ryszard
dc.contributor.authorKlimczak, Mariusz
dc.contributor.authorFeurer, Thomas
dc.contributor.authorRomano, Valerio
dc.contributor.authorHeidt, Alexander
dc.date.accessioned2025-04-14T18:07:10Z
dc.date.available2025-04-14T18:07:10Z
dc.date.createdat2025-04-04T06:38:46Zen
dc.date.issued2025
dc.date.openaccess0
dc.description.accesstimew momencie opublikowania
dc.description.number5
dc.description.physical949-966
dc.description.versionostateczna wersja wydawcy
dc.description.volume15
dc.identifier.doi10.1364/OME.546496
dc.identifier.issn2159-3930
dc.identifier.urihttps://ruj.uj.edu.pl/handle/item/551497
dc.languageeng
dc.language.containereng
dc.rightsDodaję tylko opis bibliograficzny
dc.rights.licenceInna otwarta licencja
dc.share.typeotwarte czasopismo
dc.subject.enoptical fiber
dc.subject.ennanodiamonds
dc.subject.plświatłowód
dc.subject.plnanodiamenty
dc.subtypeArticle
dc.titleLaser-assisted rapid prototyping of silica optical fibers functionalized with nanodiamonds and multiple active rare earth dopants
dc.title.journalOptical Materials Express
dc.typeJournalArticle
dspace.entity.typePublicationen
dc.abstract.en
We present a rapid prototyping method for functionalized silica optical fibers, leveraging laser-assisted preform manufacturing combined with powder-in-tube and sol-gel dip-coating techniques. Laser vitrification enables precise thermal control through an ultra-thin heat blade characterized by localized heating and steep temperature gradients, facilitating high-quality glass formation and the integration of heat-sensitive dopants. We demonstrate three key outcomes: (i) fabrication of Ytterbium-doped active fibers with performance comparable to commercial benchmarks, (ii) development of fibers with fluorescence bandwidths exceeding one octave, doped with multiple rare-earth ions, promising for wide-band telecommunications and ultrashort pulse amplification, and (iii) the first direct doping of silica fibers with nitrogen-vacancy fluorescent nanodiamonds, enabling single-photon quantum emitter integration with the backbone of current information technology networks. Additionally, nanodiamond doping is proposed as a pathway to control the nonlinear refractive index of silica fibers. These findings establish laser-assisted preform fabrication as a versatile and efficient technique for creating advanced optical fibers with innovative functionalities.
dc.affiliation
Wydział Fizyki, Astronomii i Informatyki Stosowanej : Instytut Fizyki im. Mariana Smoluchowskiego
dc.contributor.author
Hänzi, Pascal
dc.contributor.author
Pysz, Dariusz
dc.contributor.author
Mrózek, Mariusz - 213128
dc.contributor.author
Bogdanowicz, Robert
dc.contributor.author
Buczyński, Ryszard
dc.contributor.author
Klimczak, Mariusz
dc.contributor.author
Feurer, Thomas
dc.contributor.author
Romano, Valerio
dc.contributor.author
Heidt, Alexander
dc.date.accessioned
2025-04-14T18:07:10Z
dc.date.available
2025-04-14T18:07:10Z
dc.date.createdaten
2025-04-04T06:38:46Z
dc.date.issued
2025
dc.date.openaccess
0
dc.description.accesstime
w momencie opublikowania
dc.description.number
5
dc.description.physical
949-966
dc.description.version
ostateczna wersja wydawcy
dc.description.volume
15
dc.identifier.doi
10.1364/OME.546496
dc.identifier.issn
2159-3930
dc.identifier.uri
https://ruj.uj.edu.pl/handle/item/551497
dc.language
eng
dc.language.container
eng
dc.rights
Dodaję tylko opis bibliograficzny
dc.rights.licence
Inna otwarta licencja
dc.share.type
otwarte czasopismo
dc.subject.en
optical fiber
dc.subject.en
nanodiamonds
dc.subject.pl
światłowód
dc.subject.pl
nanodiamenty
dc.subtype
Article
dc.title
Laser-assisted rapid prototyping of silica optical fibers functionalized with nanodiamonds and multiple active rare earth dopants
dc.title.journal
Optical Materials Express
dc.type
JournalArticle
dspace.entity.typeen
Publication
Affiliations

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