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- W1609847819 abstract "Nowadays superconductors serve in numerous applications, from high-field magnets to ultra-sensitive detectors of radiation. Mesoscopic superconducting devices, i.e. those with nanoscale dimensions, are in a special position as they are easily driven out of equilibrium under typical operating conditions. The out-of-equilibrium superconductors are characterized by non-equilibrium quasiparticles (QPs). These extra excitations can compromise the performance of mesoscopic devices by introducing, e.g., leakage currents or decreased coherence times in quantum devices. By applying an external magnetic field, one can conveniently suppress or redistribute the population of excess quasiparticles. In this Letter we present an experimental demonstration and a theoretical analysis of such effective control of quasiparticles, resulting in electron cooling for the first time both in the Meissner and vortex states of a mesoscopic superconductor, using a single-electron turnstile as an example. We introduce a theoretical model of QP dynamics which is in quantitative agreement with the experimental data." @default.
- W1609847819 created "2016-06-24" @default.
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- W1609847819 date "2015-06-30" @default.
- W1609847819 modified "2023-09-25" @default.
- W1609847819 title "Manipulation of quasiparticle trapping and electron cooling in Meissner and vortex states of mesoscopic superconductors" @default.
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