English

Theory of Tunneling Anomaly in Superconductor above Paramagnetic Limit

Superconductivity 2013-07-19 v1 Disordered Systems and Neural Networks

Abstract

We study the tunneling density of states (DoS) in the superconducting systems driven by Zeeman splitting EZE_Z into the paramagnetic phase. We show that, even though the BCS gap disappears, superconducting fluctuations cause a strong DoS singularity in the vicinity of energies E-E^* for electrons polarized along the magnetic field and EE^* for the opposite polarization. The position of this singularity E=\case12(EZ+EZ2Δ2)E^*=\case{1}{2}(E_Z + \sqrt{E_Z^2- \Delta^2}) (where Δ\Delta is BCS gap at EZ=0E_Z=0) is universal. We found analytically the shape of the DoS for different dimensionality of the system. For ultra-small grains the singularity has the shape of the hard gap, while in higher dimensions it appears as a significant though finite dip. The spin-orbit scattering, and the orbital magnetic field suppress the singularity. Our results are qualitatively consistent with recent experiments in superconducting films.

Keywords

Cite

@article{arxiv.cond-mat/9802160,
  title  = {Theory of Tunneling Anomaly in Superconductor above Paramagnetic Limit},
  author = {Hae-Young Kee and I. L. Aleiner and B. L. Altshuler},
  journal= {arXiv preprint arXiv:cond-mat/9802160},
  year   = {2013}
}

Comments

29 pages, 17 figures included