Papers
Topics
Authors
Recent
Search
2000 character limit reached

Migdal-Eliashberg theory of multi-band high-temperature superconductivity in field-effect-doped hydrogenated (111) diamond

Published 26 Feb 2020 in cond-mat.supr-con, cond-mat.mes-hall, and cond-mat.mtrl-sci | (2002.11554v2)

Abstract: We perform single- and multi-band Migdal-Eliashberg (ME) calculations with parameters exctracted from density functional theory (DFT) simulations to study superconductivity in the electric-field-induced 2-dimensional hole gas at the hydrogenated (111) diamond surface. We show that according to the Eliashberg theory it is possible to induce a high-T${\text{c}}$ superconducting phase when the system is field-effect doped to a surface hole concentration of $6\times10{14}\,$cm${-2}$, where the Fermi level crosses three valence bands. Starting from the band-resolved electron-phonon spectral functions $\alpha2F{jj'}(\omega)$ computed ab initio, we iteratively solve the self-consistent isotropic Migdal-Eliashberg equations, in both the single-band and the multi-band formulations, in the approximation of a constant density of states at the Fermi level. In the single-band formulation, we find T$_{\text{c}}\approx40\,$K, which is enhanced between $4\%$ and $8\%$ when the multi-band nature of the system is taken into account. We also compute the multi-band-sensistive quasiparticle density of states to act as a guideline for future experimental works.

Citations (2)

Summary

No one has generated a summary of this paper yet.

Paper to Video (Beta)

No one has generated a video about this paper yet.

Whiteboard

No one has generated a whiteboard explanation for this paper yet.

Open Problems

We haven't generated a list of open problems mentioned in this paper yet.

Continue Learning

We haven't generated follow-up questions for this paper yet.

Collections

Sign up for free to add this paper to one or more collections.