Proximity Effect, Andreev Reflections, and Charge Transport in Mesoscopic Superconducting-Semiconducting Heterostructures
arXiv:cond-mat/9810343 · doi:10.1006/spmi.1999.0718
Abstract
In the quasi-twodimensional (Q2D) electron gas of an InAs channel between an AlSb substrate and superconducting Niobium layers the proximity effect induces a pair potential so that a Q2D mesoscopic superconducting-normal-superconducting (SNS) junction forms in the channel. The pair potential is calculated with quasiclassical Green's functions in the clean limit. For such a junction alternating Josephson currents and current-voltage characteristics (CVCs) are computed, using the non-equilibrium quasiparticle wavefunctions which solve the time-dependent Bogoliubov-de Gennes Equations. The CVCs exhibit features found experimentally by the Kroemer group: A steep rise of the current at small voltages ("foot") changes at a "corner current" to a much slower increase of current with higher voltages, and the zero-bias differential resistance increases with temperature. Phase-coherent multiple Andreev reflections and the associated Cooper pair transfers are the physical mechanisms responsible for the oscillating Josephson currents and the CVCs. Additional experimental findings not reproduced by the theory require model improvements, especially a consideration of the external current leads which should give rise to hybrid quasiparticle/collective mode excitations.
8 pages, 4 figures (consisting of 5 .ps-files), added reference
References in corpus (1)
Cited by in corpus (7)
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- Microscopic self-consistent theory of Josephson junctions including dynamical electron correlations
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- Quasiparticle dynamics in ballistic weak links under weak voltage bias: An elementary treatment
- Comment on "Critical currents in ballistic two-dimensional InAs-based superconducting weak links"
- Electron-hole coherence in core-shell nanowires with partial proximity induced superconductivity