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arXiv · 1710.06580

Symmetry-unprotected nodes or gap minima in $s_{++}$ state of FeSe single crystal

Abstract

We report the study on superconducting pairing mechanism of FeSe via the pair-breaking effects induced by H$^+$-irradiation combined with low-temperature specific heat measurements. A multi-gap structure with nodes or gap minima is suggested in a clean FeSe by the specific heat results. The suppression of critical temperature $T_c$ with increasing the defect density manifests a two-step behavior. When the increase in the residual resistivity is small, $Δρ_0$ $<$ $\sim$4.5 $μΩ$cm, $T_c$ is gradually suppressed with increasing the density of scattering centers, suggesting the presence of symmetry-unprotected nodes or gap minima. However, for $Δρ_0$ $>$ $\sim$4.5 $μΩ$cm, $T_c$ is almost independent of the scattering, which indicates that the nodes or gap minima are lifted and the order parameter becomes almost isotropic without sign change. Thus, the superconductivity in FeSe is found to be realized in symmetry-unprotected nodal or highly anisotropic $s_{++}$ state.

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Yue Sun, Akiyoshi Park, Sunseng Pyon, Tsuyoshi Tamegai, Hisashi Kitamura. 2017-10-18. Symmetry-unprotected nodes or gap minima in $s_{++}$ state of FeSe single crystal. https://doi.org/10.1103/physrevb.96.140505

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