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Classification of “multipole” superconductivity in multiorbital systems and its implications

T. Nomoto, K. Hattori, H. Ikeda

DOI 10.1103/PhysRevB.94.174513 · Physical Review B

T1

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Abstract

Motivated by a growing interest in multiorbital superconductors with spin-orbit interactions, we perform the group-theoretical classification of various unconventional superconductivity emerging in symmorphic O, D4, and D6 space groups. The generalized Cooper pairs, which we here call “multipole” superconductivity, possess spin-orbital coupled (multipole) degrees of freedom, instead of the conventional spin singlet/triplet in single-orbital systems. From the classification, we obtain the following key consequences, which have never been focused in the long history of research in this field: (1) A superconducting gap function with Γ9⊗Γ9 in D6 possesses nontrivial momentum dependence different from the usual spin-12 classification. (2) Unconventional gap structure can be realized in the BCS approximation of purely local (onsite) interactions irrespective of attraction/repulsion. It implies the emergence of an electron-phonon (e-ph) driven unconventional superconductivity. (3) Reflecting symmetry of orbital basis functions there appear not symmetry protected but inevitable line nodes/gap minima, and thus, anisotropic s-wave superconductivity can be naturally explained even in the absence of competing fluctuations.

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FormulaReported Tc (K)Pressure (GPa)Type
CeCoIn5

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CePt3Si

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UIr

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LaBiPt

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UPt3

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(Y,Lu)Ni2B2C

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—Pressure not reportedunknown

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