Electronic structure and superconductivity of the non-centrosymmetric Sn4As3

In a superconductor that lacks inversion symmetry, the spatial part of the Cooper pair wave function has a reduced symmetry, allowing for the mixing of spin-singlet and spin-triplet Cooper pairing channels and thus providing a pathway to a non-trivial superconducting state. Materials with a non-cent...

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Veröffentlicht in:New journal of physics 2020-06, Vol.22 (6), p.063049
Hauptverfasser: Marques, C A, Neat, M J, Yim, C M, Watson, M D, Rhodes, L C, Heil, C, Pervakov, K S, Vlasenko, V A, Pudalov, V M, Muratov, A V, Kim, T K, Wahl, P
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Sprache:eng
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Zusammenfassung:In a superconductor that lacks inversion symmetry, the spatial part of the Cooper pair wave function has a reduced symmetry, allowing for the mixing of spin-singlet and spin-triplet Cooper pairing channels and thus providing a pathway to a non-trivial superconducting state. Materials with a non-centrosymmetric crystal structure and with strong spin-orbit coupling are a platform to realize these possibilities. Here, we report the synthesis and characterisation of high quality crystals of Sn4As3, with non-centrosymmetric unit cell (R3m). We have characterised the normal and superconducting states using a range of methods. Angle-resolved photoemission spectroscopy shows a multiband Fermi surface and the presence of two surface states, confirmed by density-functional theory calculations. Specific heat measurements reveal a superconducting critical temperature of Tc ∼ 1.14 K and an upper critical magnetic field of μ0Hc ≳ 7 mT, which are both confirmed by ultra-low temperature scanning tunneling microscopy and spectroscopy. Scanning tunneling spectroscopy shows a fully formed superconducting gap, consistent with conventional s-wave superconductivity.
ISSN:1367-2630
DOI:10.1088/1367-2630/ab890a