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Strong-coupling multigap superconductivity in the Heusler compound ScAu2Al

Jozef Kačmarčík, Zuzana Pribulová, Yevhen Petrenko, Gabriel Kuderowicz, Paweł Wójcik, Michał J. Winiarski, Szymon M. Królak, Filip Košuth, Pavol Szabó, Tomasz Klimczuk, Bartlomiej Wiendlocha, Peter Samuely

cond-mat.supr-conarXiv:2609.21845

Abstract

ScAu2Al is the Heusler superconductor with the highest reported transition temperature, Tc, close to 5 K. Here, we combine high-resolution ac calorimetry and electrical-transport measurements with first-principles-based Eliashberg calculations. The large specific-heat jump, ΔC/γnTc = 2.2, well above the weak-coupling BCS value of 1.43, together with an electron-phonon coupling constant λ = 1.1, establishes ScAu2Al as a strong-coupling superconductor. The electronic specific heat is described better by a two-gap α model, with 2ΔS/kBTc = 4.1 and 2ΔL/kBTc = 4.8, than by a single-gap model. The thermodynamic upper critical field follows a conventional WHH-like temperature dependence with Bc2(0) = 0.18 T, whereas the resistively determined critical field reaches values about three times larger and exhibits a pronounced positive curvature. We attribute the enhanced resistive field scale to superconductivity in disordered grain-boundary and interfacial regions. The experimental results are supported by calculations of the heat capacity and upper critical field within the Eliashberg formalism using Fermi-surface and electron-phonon parameters obtained from first-principles calculations

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