Inter-orbital spin-triplet superconductivity from altermagnetic fluctuations
Chen Lu, Chuang Li, Chao Cao, Huiqiu Yuan, Fu-Chun Zhang, Lun-Hui Hu

TL;DR
This paper demonstrates that inversion-symmetry-breaking altermagnetic fluctuations can induce a novel inter-orbital spin-triplet superconductivity, resolving a fundamental competition and revealing a new pairing state with distinct properties.
Contribution
It introduces a mechanism where broken inversion symmetry in altermagnetic fluctuations leads to inter-orbital spin-triplet pairing, a state not previously identified.
Findings
Inversion symmetry breaking favors spin-triplet pairing.
A phase-locking Josephson coupling determines the pairing phase.
The resulting state is a distinct inter-orbital spin-triplet superconductor.
Abstract
Altermagnetic (AM) fluctuations are a new class of collinear spin fluctuations whose role in mediating superconductivity faces a fundamental tension: their -point peak favors intra-orbital spin-triplet pairing, while their spin compensation favors inter-orbital singlets. Here, we demonstrate that inversion-symmetry-broken AM fluctuations generically resolve this competition in favor of spin-triplet pairing. As a proof of concept, we study a minimal two-orbital model with two van Hove singularities. The broken inversion symmetry induces momentum-orbital locking: the same orbital dominates at opposite momenta, enhancing the triplet channel. Crucially, a subdominant fluctuation channel arising from inter-van-Hove nesting provides an internal Josephson coupling that locks the phase difference between triplet pairs on different orbitals. We find this coupling changes sign ( to…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Iron-based superconductors research · Rare-earth and actinide compounds
