English

Defect engineering of the electronic transport through cuprous oxide interlayers

Materials Science 2016-06-07 v1 Mesoscale and Nanoscale Physics

Abstract

The electronic transport through Au-(Cu2_{2}O)n_n-Au junctions is investigated using first-principles calculations and the nonequilibrium Green's function method. The effect of varying the thickness (i.e., nn) is studied as well as that of point defects and anion substitution. For all Cu2_{2}O thicknesses the conductance is more enhanced by bulk-like (in contrast to near-interface) defects, with the exception of O vacancies and Cl substitutional defects. A similar transmission behavior results from Cu deficiency and N substitution, as well as from Cl substitution and N interstitials for thick Cu2_{2}O junctions. In agreement with recent experimental observations, it is found that N and Cl doping enhances the conductance. A Frenkel defect, i.e., a superposition of an O interstitial and O substitutional defect, leads to a remarkably high conductance. From the analysis of the defect formation energies, Cu vacancies are found to be particularly stable, in agreement with earlier experimental and theoretical work.

Keywords

Cite

@article{arxiv.1605.04171,
  title  = {Defect engineering of the electronic transport through cuprous oxide interlayers},
  author = {Mohamed M. Fadlallah and Ulrich Eckern and Udo Schwingenschlögl},
  journal= {arXiv preprint arXiv:1605.04171},
  year   = {2016}
}

Comments

21 pages (preprint style), 8 figures

R2 v1 2026-06-22T14:00:09.662Z