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arXiv · 2512.17765

Proximity effect in gap-asymmetric superconducting bilayers and regularization of transition rates

Abstract

The standard mean-field treatment of low-temperature superconductors leads to a square-root divergent density of states at the gap value. This feature can lead to unphysical logarithmic divergences in various quantities, such as currents and qubit transition rates. We revisit their possible regularization based on the proximity effect between two superconducting films with different gaps. We derive analytical approximations for the density of states in each superconducting film. We find that the smearing of the density of states grows with the gap asymmetry. As a concrete example, we discuss the regularization of transition rates in qubits with frequency close to resonance with the gap asymmetry between the two films, and the consequent smoothening of the jump discontinuity in the qubit frequency shift. Our results could also aid the development of superconducting detectors and related devices based on superconducting bilayers.

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G. Marchegiani, G. Catelani. 2025-12-19. Proximity effect in gap-asymmetric superconducting bilayers and regularization of transition rates. https://doi.org/10.1103/k2d4-tpc4

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