Perturbation theory of a superconducting 0 2 φ impurity quantum phase transition

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Abstract

A single-level quantum dot with Coulomb repulsion attached to two superconducting leads is studied via the perturbation expansion in the interaction strength. We use the Nambu formalism and the standard many-body diagrammatic representation of the impurity Green functions to formulate the Matsubara self-consistent perturbation expansion. We show that at zero temperature second order of the expansion in its spin-symmetric version yields a nearly perfect agreement with the numerically exact calculations for the position of the 0 a ' € phase boundary at which the Andreev bound states reach the Fermi energy as well as for the values of single-particle quantities in the 0-phase. We present results for phase diagrams, level occupation, induced local superconducting gap, Josephson current, and energy of the Andreev bound states with the precision surpassing any (semi)analytical approaches employed thus far.

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Zonda, M., Pokorný, V., Janiš, V., & Novotný, T. (2015). Perturbation theory of a superconducting 0 2 φ impurity quantum phase transition. Scientific Reports, 5. https://doi.org/10.1038/srep08821

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