English

Thermopower and thermophase in a $d$-wave superconductor

Superconductivity 2022-03-15 v2 Mesoscale and Nanoscale Physics

Abstract

In an unconventional superconductor, the interplay of scattering off impurities and Andreev processes may lead to different scattering times for electronlike and holelike quasiparticles. Such electron-hole asymmetry appears when the impurity scattering phase shift is intermediate between the Born and unitary limits and leads to an expectation for large thermoelectric effects. Here, we examine the thermoelectric response of a dd-wave superconductor connected to normal-metal reservoirs under a temperature bias using a fully self-consistent quasiclassical theory. The thermoelectrically induced quasiparticle current is cancelled by superflow in an open circuit setup, but at the cost of a charge imbalance induced at the contacts and extending across the structure. We investigate the resulting thermopower and thermophase and their dependencies on scattering phase shift, mean free path, and interface transparency. For crystal-axis orientations such that surface-bound zero-energy Andreev states are formed, the thermoelectric effect is reduced as a result of locally reduced electron-hole asymmetry. For a semiballistic superconductor with good contacts, we find thermopowers of order several μV/K{\mu}V/K, suggesting a thermovoltage measurement as a promising path to investigate thermoelectricity in unconventional superconductors.

Keywords

Cite

@article{arxiv.2111.10440,
  title  = {Thermopower and thermophase in a $d$-wave superconductor},
  author = {Kevin Marc Seja and Louhane Jacob and Tomas Löfwander},
  journal= {arXiv preprint arXiv:2111.10440},
  year   = {2022}
}

Comments

11 pages, 6 figures