English

Microscopic Theory of Josephson Mesoscopic Constrictions

Condensed Matter 2009-10-22 v1

Abstract

We present a microscopic theory for the d.c. Josephson effect in model mesoscopic constrictions. Our method is based on a non-equilibrium Green function formalism which allows for a self-consistent determination of the order parameter profile along the constriction. The various regimes defined by the different length scales (Fermi wavelength λF\lambda_F, coherence length ξ0\xi_0 and constriction length LCL_C) can be analyzed, including the case where all these lengths are comparable. For the case λF<~(LC,ξ0)\lambda_F \tilde{<} (L_C,\xi_0) phase oscillations with spatial period λF/2\lambda_F/2 can be observed. In the case of LC>ξ0L_C>\xi_0 solutions with a phase-slip center inside the constriction can be found, in agreement with previous phenomenological theories.

Cite

@article{arxiv.cond-mat/9312081,
  title  = {Microscopic Theory of Josephson Mesoscopic Constrictions},
  author = {A. Martin-Rodero and F. J. Garcia-Vidal and A. Levy-Yeyati},
  journal= {arXiv preprint arXiv:cond-mat/9312081},
  year   = {2009}
}

Comments

4 pages (RevTex 3.0), 3 postscript figures available upon request, 312456-CG