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Gota Sato

Publications and source records attributed to Gota Sato.

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Revisiting the surface density of states of midgap Andreev edge states

We revisit the effect of surface roughness on midgap Andreev edge states (MAES) in p- and d- wave superconductors. For a perfectly specular surface, MAES form a flat band at the Fermi energy, which manifests as a sharp midgap peak in the surface density of states (SDOS). Previous theoretical studies have shown that MAES in p- and d-wave superconductors respond markedly differently to surface roughness. In the d-wave state, diffuse surface scattering significantly broadens the midgap peak in the SDOS, accompanied by the emergence of a V-shaped structure centered at the Fermi energy. In contrast, the midgap peak in the p-wave state remains robust against diffuse scattering. In this work, we clarify the physical origin of this contrasting behavior. A key aspect of our analysis is that the flat band in the d-wave state consists of two distinct types of MAES modes. We show that inter-mode diffuse scattering leads to substantial broadening of the midgap peak and to the formation of the V-shaped structure. By contrast, the robustness of MAES in the p-wave state arises from the presence of a single MAES mode in the flat band. These results provide new insight into the response of MAES to surface roughness.

cond-mat.supr-con

Lifetime of edge modes at rough surfaces of chiral superconductors

We study the effect of diffuse surface scattering on the edge modes in two-dimensional chiral superconductors with time-reversal symmetry-breaking Cooper pairs, each carrying angular momentum $m \hbar$ ($m = 1,2,3, \cdots$). To elucidate the diffuse scattering effect, we formulate the inverse lifetime $Γ= \hbar/τ$ corresponding to the broadening of the surface density of states (SDOS) for the edge mode. This derivation uses random S-matrix theory, which allows us to describe the surface effect in a unified way from the specular to the diffuse limit within the quasiclassical theory framework of superconductivity. We find that $Γ$ in the chiral states with $m \geq 2$ is larger than that in the chiral $p$-wave state ($m = 1$) because of the multiple edge mode branches in former superconducting states (the number of which equals $m$). Diffuse scattering between the different branches causes a significant broadening of SDOS. In contrast, the edge mode in the chiral $p$-wave state is robust to diffuse scattering because only a single edge mode branch exists. We also discuss SDOS at the diffuse limit, where the description in terms of $Γ$ is not useful. The diffuse scattering effect on SDOS can be understood qualitatively in terms of destructive interference analogous to that caused by impurity scattering in unconventional superconductors.

cond-mat.supr-con