Anomalous superconducting proximity effect and coherent charge transport in semiconducting thin film with spin-orbit interaction
arXiv:1508.07087 · doi:10.1209/0295-5075/114/57005
Abstract
We present a microscopic theory of the superconducting proximity effect in a semiconducting thin film with spin-orbit interaction () in an external magnetic field. We demonstrate that an effective 1D Hamiltonian which describes induced superconductivity in in contact with a usual -wave superconductor possesses not only spin-singlet induced superconducting order parameter term, as commonly adopted, but spin triplet order parameter term also. Using this new effective Hamiltonian we confirm previous results for a normal current across contacts of with a normal metal and for a Josephson current with the same with induced superconductivity, obtained previously in the framework of the phenomenological Hamiltonian without spin-triplet terms. However, a calculated current-phase relation across the transparent contact between with induced superconductivity in magnetic field and usual -wave superconductor differs significantly from previous results. We suggest the experiment which can confirm our theoretical predictions.
5 pages, 6 figures
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