105 research outputs found

    A Non-Centrosymmetric Superconductor with a Bulk 3D Dirac Cone Gapped by Strong Spin Orbit Coupling

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    Layered, non-centrosymmetric, heavy element PbTaSe2 is found to be superconducting. We report its electronic properties accompanied by electronic structure calculations. Specific heat, electrical resistivity and magnetic susceptibility measurements indicate that PbTaSe2 is a moderately coupled, type-II BCS superconductor (Tc = 3.72 K, Ginzburg-Landau parameter Kappa = 14) with an electronphonon coupling constant of Lambda_ep = 0.74. Electronic structure calculations reveal a single bulk 3D Dirac cone at the K point of the Brillouin Zone derived exclusively from its hexagonal Pb layer; it is similar to the feature found in graphene except there is a 0.8 eV gap opened by spin-orbit coupling. The combination of large spin-orbit coupling and lack of inversion symmetry also results in large Rashba splitting on the order of tenths of eV

    Superconductivity in the Nb-Ru-Ge σ\sigma-Phase

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    We show that the previously unreported ternary σ\sigma-phase material Nb20.4_{20.4}Ru5.7_{5.7}Ge3.9_{3.9} is a superconductor with a critical temperature of 2.2 K. Temperature-dependent magnetic susceptibility, resistance, and specific heat measurements were used to characterize the superconducting transition. The Sommerfeld constant γ\gamma for Nb20.4_{20.4}Ru5.7_{5.7}Ge3.9_{3.9} is 91 mJ mol-f.u.−1^{-1}K−2^{-2} and the specific heat anomaly at the superconducting transition, Δ\DeltaC/γ\gammaTc_c, is approximately 1.38. The zero-temperature upper critical field (μ0\mu_0Hc2_{c2}(0)) was estimated to be 2 T by resistance data. Field-dependent magnetization data analysis estimated μ0\mu_0Hc1_{c1}(0) to be 5.5 mT. Thus, the characterization shows Nb20.4_{20.4}Ru5.7_{5.7}Ge3.9_{3.9} to be a type II BCS superconductor. This material appears to be the first reported ternary phase in the Nb-Ru-Ge system, and the fact that there are no previously reported binary Nb-Ru, Nb-Ge, or Ru-Ge σ\sigma-phases shows that all three elements are necessary to stabilize the material. A σ\sigma-phase in the Ta-Ru-Ge system was synthesized but did not display superconductivity above 1.7 K, which suggests that electron count cannot govern the superconductivity observed. Preliminary characterization of a possible superconducting σ\sigma-phase in the Nb-Ru-Ga system is also reported.Comment: 7 pages, 8 figures, 3 table
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