Quasiclassical theory of charge transport across mesoscopic normal metal-superconducting heterostructures with current conservation
arXiv:2106.08439 · doi:10.1103/PhysRevB.104.104502
Abstract
We consider the steady-state nonequilibrium behavior of mesoscopic superconducting wires connected to normal-metal reservoirs. Going beyond the diffusive limit, we utilize the quasiclassical theory and perform a self-consistent calculation that guarantees current conservation through the entire system. Going from the ballistic to the diffusive limit, we investigate several crucial phenomena such as charge imbalance, momentum-resolved nonequilbrium distributions, and the current-to-superflow conversion. Connecting to earlier results for the diffusive case, we find that superconductivity can break down at a critical bias voltage . We find that generally increases as the interface transparency is reduced, while the dependence on the mean-free path is non-monotonous. We discussthe key differences of the ballistic and semi-ballistic regimes to the fully diffusive case.
17 pages, 14 figures
References in corpus (7)
- Number fluctuations of sparse quasiparticles in a superconductor
- Spin Imbalance and Spin-Charge Separation in a Mesoscopic Superconductor
- Long-range spin-polarized quasiparticle transport in mesoscopic Al superconductors with a Zeeman splitting
- Charge imbalance in superconductors in the low-temperature limit
- Enhancement of quasiparticle recombination in Ta and Al superconductors by implantation of magnetic and nonmagnetic atoms
- Effect of Quasiparticles Injection on the AC Response of a Superconductor
- Spin imbalance in hybrid superconducting structures with spin-active interfaces
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