Verifying Theoretical Models of Flux Pinning Using Heavy Ion Irradiated YBCO Thin Films

dc.contributor.authorPaturi, Petriina
dc.contributor.authorAye, Moe Moe
dc.contributor.authorSoman, Arya
dc.contributor.authorNotthoff, Christian
dc.contributor.authorKluth, Patrick
dc.contributor.authorStrickland, Nicholas
dc.contributor.authorHuhtinen, Hannu
dc.contributor.organizationfi=Wihurin fysiikantutkimuslaboratorio|en=Wihuri Physical Laboratory|
dc.contributor.organization-code1.2.246.10.2458963.20.26581883332
dc.converis.publication-id484521670
dc.converis.urlhttps://research.utu.fi/converis/portal/Publication/484521670
dc.date.accessioned2025-08-27T22:29:16Z
dc.date.available2025-08-27T22:29:16Z
dc.description.abstractWe have irradiated YBa2 Cu3O6+x (YBCO) films without artificial pinning sites with Ag+ ions with energies of 75 MeV and 150 MeV and fluences between 2-8 · 1011 ions/cm2 in order to create as controlled nanorod pinning sites as possible. The structural and superconducting properties were determined before and after the irradiation with x-ray diffraction and magnetic measurement. After the irradiation also transport and transmission electron microscopy measurements were made. It was noted that the ion tracks are all parallel to the YBCO c-axis of the sample and those done with 150 MeV ions formed continuous 5 nm diameter tracks, whereas with 75 MeV ions, the tracks were not continuous through the sample. The Tc and Jc(0,T) decreased with the irradiation, but the in-field Jc increased. The maximum increase was obtained with the 150MeV and 4· 1011 ions/cm2 sample with continuous rods, where the distance between the rods was closest to the diameter of the rods. Thus, the previous theoretical models predicting optimal pinning when the pinning site diameter is approximately equal to the distance between the pinning sites, are experimentally verified for these very pure samples, with no other external pinning sites.
dc.identifier.eissn2378-7074
dc.identifier.jour-issn1051-8223
dc.identifier.olddbid202253
dc.identifier.oldhandle10024/185280
dc.identifier.urihttps://www.utupub.fi/handle/11111/46389
dc.identifier.urlhttps://doi.org/10.1109/tasc.2025.3527949
dc.identifier.urnURN:NBN:fi-fe2025082789731
dc.language.isoen
dc.okm.affiliatedauthorPaturi, Petriina
dc.okm.affiliatedauthorAye, Moe
dc.okm.affiliatedauthorHuhtinen, Hannu
dc.okm.discipline114 Physical sciencesen_GB
dc.okm.discipline114 Fysiikkafi_FI
dc.okm.internationalcopublicationinternational co-publication
dc.okm.internationalityInternational publication
dc.okm.typeA1 ScientificArticle
dc.publisherInstitute of Electrical and Electronics Engineers (IEEE)
dc.publisher.countryUnited Statesen_GB
dc.publisher.countryYhdysvallat (USA)fi_FI
dc.publisher.country-codeUS
dc.relation.articlenumber8000105
dc.relation.doi10.1109/TASC.2025.3527949
dc.relation.ispartofjournalIEEE Transactions on Applied Superconductivity
dc.relation.issue5
dc.relation.volume35
dc.source.identifierhttps://www.utupub.fi/handle/10024/185280
dc.titleVerifying Theoretical Models of Flux Pinning Using Heavy Ion Irradiated YBCO Thin Films
dc.year.issued2025

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