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Multiple correlation lengths and type-1.5 superconductivity in U (1) superconductors due to hidden competition between irreducible representations of nonlocal pairing
KTH, School of Engineering Sciences (SCI), Physics, Condensed Matter Theory.ORCID iD: 0000-0002-1628-6192
KTH, School of Engineering Sciences (SCI), Physics, Condensed Matter Theory.ORCID iD: 0000-0002-6012-0034
KTH, School of Engineering Sciences (SCI), Physics, Condensed Matter Theory.ORCID iD: 0000-0001-7593-4543
2026 (English)In: Physical Review B, ISSN 2469-9950, E-ISSN 2469-9969, Vol. 113, no 22, article id 224520Article in journal (Refereed) Published
Abstract [en]

The ratio of magnetic field penetration length A and superconducting coherence length is a defining quantity that governs magnetic response and underpins the conventional type-I and type-II classification of superconductors. While multicomponent superconductors are known to exhibit multiple coherence lengths with rich and often exotic behavior, single-component superconductors are traditionally assumed to be fully characterized by a single Ginzburg-Landau parameter. Here we revisit this concept. We demonstrate that even nominally single-component superconductors are, in general, intrinsically characterized by multiple coherence lengths. Specifically, we analyze a common physical situation in which a subdominant pairing channel is fully suppressed in the ground state, yielding a nominally single-component superconducting ground state. We show that, nonetheless, proximity to a competing pairing instability generically gives rise to multiple correlation lengths with a nontrivial hierarchy. This has consequences for all inhomogeneous states. Especially near a competing pairing instability, the magnetic field penetration depth lies between two distinct coherence lengths, leading to a breakdown of the conventional type-I and type-II dichotomy and enabling the coexistence of vortex clusters and Meissner domains. More broadly, we find that superconducting states cannot, in general, be classified by a single fundamental length scale, even in ostensibly conventional single-component systems.

Place, publisher, year, edition, pages
American Physical Society (APS) , 2026. Vol. 113, no 22, article id 224520
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Condensed Matter Physics
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URN: urn:nbn:se:kth:diva-387074DOI: 10.1103/bf2v-wtktISI: 001808557500001OAI: oai:DiVA.org:kth-387074DiVA, id: diva2:2091498
Note

QC 20260812

Available from: 2026-08-12 Created: 2026-08-12 Last updated: 2026-08-12Bibliographically approved

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Talkachov, AntonLeask, PaulBabaev, Egor
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