Impurity-induced bound states as a signature of pairing symmetry in multiband superconducting CeCu2Si2

Abstract

Multiband superconductivity with dominant two-gap features are recently proposed to challenge the earlier accepted nodal d-wave pairing in the first unconventional superconductor CeCu2Si2. Here we obtain multiband Fermi-surface topology of CeCu2Si2 via first-principles calculations, and study the problem within an effective two hybridization band model including detailed band-structure. Within T-matrix approximation, our calculations reveal that different pairing candidates could yield qualitatively distinct features characterised by impurity-induced bound states. Except for the nodeless s-wave, both loop-nodal s-wave and d-wave pairings can give rise to intra-gap impurity bound states. In particular, the intra-gap states for the dx2-y2-wave and loop-nodal s-wave are distinguishable and locate either near or far away from the Fermi energy, respectively. These features can be readily verified by high-resolution scanning tunneling microscopy/spectroscopy and provide an unambiguous justification for the ongoing debate about the superconducting gap symmetry of CeCu2Si2 at ambient pressure.

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