Signature of Orbital Driven Finite Momentum Pairing in a 3D Ising Superconductor
F. Z. Yang, H. D. Zhang, Saswata Mandal, F. Y. Meng, G. Fabbris, A. Said, P. Mercado Lozano, A. Rajapitamahuni, E. Vescovo, C. Nelson, S. Lin, Y. Park, E. M. Clements, T. Z. Ward, H.-N. Lee, H. C. Lei, C. X. Liu, H. Miao

TL;DR
This study provides experimental evidence of orbital-driven finite momentum pairing in a 3D Ising superconductor, revealing unconventional superconducting behavior influenced by strong spin-orbit coupling and magnetoelectric effects.
Contribution
It demonstrates the realization of orbital driven finite momentum pairing in a 3D bulk superconductor, expanding understanding beyond 2D materials.
Findings
Upper critical field exceeds Pauli limit, indicating orbital pair-breaking.
Field-induced transition breaks rotational symmetry of pairing.
Evidence of unusual charge density wave and weak interlayer hopping.
Abstract
The finite momentum superconducting pairing states (FMPs), where Cooper pairs carry non-zero momentum, are believed to give rise to exotic physical phenomena including the pseudogap phase of cuprate high-Tc superconductors and Majorana fermions in topological superconductivity. FMPs can emerge in intertwined electronic liquids with strong spin-spin interactions or be induced by lifting the spin degeneracy under magnetic field as originally proposed by Fulde-Ferrell and Larkin-Ovchinnikov. In quantum materials with strong Ising-type spin-orbit coupling, such as the 2D transition metal dichalcogenides (TMDs), the spin degree of freedom is frozen enabling novel orbital driven FMPs via magnetoelectric effect. While evidence of orbital driven FMPs has been revealed in bilayer TMDs, its realization in 3D bulk materials remains an unresolved challenge. Here we report experimental signatures of…
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Taxonomy
TopicsTheoretical and Computational Physics · Quantum many-body systems · Cold Atom Physics and Bose-Einstein Condensates
