Nonequilibrium Josephson effect in mesoscopic ballistic multiterminal SNS junctions
Abstract
We present a detailed study of nonequilibrium Josephson currents and conductance in ballistic multiterminal SNS-devices. Nonequilibrium is created by means of quasiparticle injection from a normal reservoir connected to the normal part of the junction. By applying a voltage at the normal reservoir the Josephson current can be suppressed or the direction of the current can be reversed. For a junction longer than the thermal length, , the nonequilibrium current increases linearly with applied voltage, saturating at a value equal to the equilibrium current of a short junction. The conductance exhibits a finite bias anomaly around . For symmetric injection, the conductance oscillates -periodically with the phase difference between the superconductors, with position of the minimum ( or ) dependent on applied voltage and temperature. For asymmetric injection, both the nonequilibrium Josephson current and the conductance becomes -periodic in phase difference. Inclusion of barriers at the NS-interfaces gives rise to a resonant behavior of the total Josephson current with respect to junction length with a period . Both three and four terminal junctions are studied.
Cite
@article{arxiv.cond-mat/9904276,
title = {Nonequilibrium Josephson effect in mesoscopic ballistic multiterminal SNS junctions},
author = {P. Samuelsson and J. Lantz and V. S. Shumeiko and G. Wendin},
journal= {arXiv preprint arXiv:cond-mat/9904276},
year = {2009}
}
Comments
21 pages, 19 figures, submitted to Phys. Rev. B