Unconventional superconductivity in Sc$_2$Ir$_{4-x}$Si$_x$ by spin-orbit coupling driven flat band
Zhengyan Zhu, Yuxiang Wu, Shengtai Fan, Yiliang Fan, Yiwen Li, Yongze, Ye, Xiyu Zhu, Haijun Zhang, Hai-Hu Wen

TL;DR
This study uncovers unconventional superconductivity in doped Sc$_2$Ir$_{4-x}$Si$_x$ kagome lattice, driven by spin-orbit coupling and flat band effects, with evidence of strong correlations and nonstandard pairing mechanisms.
Contribution
It demonstrates that doping induces unconventional superconductivity in a kagome lattice iridate, highlighting the role of flat bands and strong spin-orbit coupling in this system.
Findings
Nonmonotonic doping dependence of $T_c$ with two domes.
Evidence of strong superconducting fluctuations near optimal doping.
Superconductivity best described by a $d$-wave gap model.
Abstract
The kagome lattice is very attractive as it can host many novel quantum states, such as the charge density wave, superconductivity, quantum spin liquid, etc. Meanwhile, iridates often exhibit a strong spin-orbit coupling (SOC) effect due to the large atomic mass of 5 elements, which has important implications for both the energy bands and the pairing symmetry of superconductors. For the Laves phase superconductor ScIr with a kagome lattice, by doping Si to the Ir sites, we observed a nonmonotonic and two-dome like doping dependence of the superconducting transition temperature , which is typically found in many unconventional superconducting systems. Interestingly, for some samples, especially ScIrSi with the optimal , after the suppression of superconductivity, the normal-state resistivity exhibits a semiconducting behavior;…
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Taxonomy
TopicsTopological Materials and Phenomena · Quantum, superfluid, helium dynamics · Advanced Condensed Matter Physics
