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Josephson and Andreev transport through quantum dots
Authors:A. Martín-Rodero
Affiliation:Departamento de Física Teórica de la Materia Condensada C-05 , Universidad Autónoma de Madrid , E-28049, Madrid, Spain
Abstract:In this article, we review the state of the art on the transport properties of quantum dot systems connected to superconducting and normal electrodes. The review is mainly focused on the theoretical achievements, although a summary of the most relevant experimental results is also given. A large part of the discussion is devoted to the single-level Anderson-type models generalized to include superconductivity in the leads, which already contains most of the interesting physical phenomena. Particular attention is paid to the competition between pairing and Kondo correlations, the emergence of π-junction behavior, the interplay of Andreev and resonant tunneling, and the important role of Andreev bound states that characterized the spectral properties of most of these systems. We give technical details on the several different analytical and numerical methods which have been developed for describing these properties. We further discuss the recent theoretical efforts devoted to extend this analysis to more complex situations like multidot, multilevel or multiterminal configurations in which novel phenomena is expected to emerge. These include control of the localized spin states by a Josephson current and also the possibility of creating entangled electron pairs by means of non-local Andreev processes.
Keywords:74.50.+r Tunneling phenomena  Josephson effects, 74.45.+c Proximity effects  Andreev reflection  SN and SNS junctions, 73.63.Kv Quantum dots, 72.15.Qm Scattering mechanisms and Kondo effect, 73.23.Hk Coulomb blockade  single-electron tunneling, 74.40.Gh Nonequilibrium superconductivity
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