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Tunable quasiparticle trapping in Meissner and vortex states of mesoscopic superconductors

机译:介观超导体在迈斯纳和涡态中的可调谐拟粒子俘获

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摘要

Nowadays, superconductors serve in numerous applications, from high-field magnets to ultrasensitive detectors of radiation. Mesoscopic superconducting devices, referring to 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. These extra excitations can compromise the performance of mesoscopic devices by introducing, for example, leakage currents or decreased coherence time in quantum devices. By applying an external magnetic field, one can conveniently suppress or redistribute the population of excess quasiparticles. In this article, we present an experimental demonstration and a theoretical analysis of such effective control of quasiparticles, resulting in electron cooling both in the Meissner and vortex states of a mesoscopic superconductor. We introduce a theoretical model of quasiparticle dynamics, which is in quantitative agreement with the experimental data.
机译:如今,超导体可用于多种应用,从高磁场磁体到辐射的超灵敏探测器。介观超导装置,指的是具有纳米级尺寸的超导装置,处于特殊的位置,因为它们在典型的工作条件下很容易失衡。失衡超导体的特征是非平衡准粒子。这些额外的激发会通过在量子器件中引入例如泄漏电流或缩短相干时间而损害介观器件的性能。通过施加外部磁场,可以方便地抑制或重新分布过多的准粒子。在本文中,我们提供了对此类准粒子的有效控制的实验演示和理论分析,从而导致了介观超导体在迈斯纳状态和涡旋状态下的电子冷却。我们介绍了一种准粒子动力学的理论模型,该模型与实验数据定量吻合。

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