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Injection of nonequilibrium quasiparticles into Zeeman-split superconductors: A way to create long-range spin imbalance

机译:将非平衡准粒子注入塞曼分裂超导体中:一种产生长程自旋不平衡的方法

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摘要

A theory of spin transport and spin detection in Zeeman-split superconducting films at low temperatures is developed. It is shown that an injection of spin-unpolarized quasiparticles into a Zeeman-split superconductor gives rise to a spin imbalance. The relaxation length of such a spin signal is determined by the energy relaxation length and can be extremely large as compared to the usual spin relaxation length. There can exist two types of signals: due to nonthermalized quasiparticle distribution and due to thermalized overheated electron distribution. They have different decay lengths and can be distinguished by their different dependencies on the applied voltage. The decay length of the nonthermalized signal is determined by the electron-electron scattering rate, renormalized due to superconductivity. The decay length of the thermalized signal is determined by the length on which energy leaves the electronic subsystem and can be very large under special conditions. Applications of the theory to recent experimental data on spin relaxation in Zeeman-split and exchange-split superconductors are discussed. In particular, it can explain the extremely high spin relaxation lengths, experimentally observed in Zeeman-split superconductors, and their growth with the magnetic field and with the applied voltage.
机译:建立了低温下塞曼分裂超导薄膜的自旋输运和自旋检测理论。结果表明,将自旋非极化的准粒子注入到塞曼分裂的超导体中会引起自旋不平衡。这种自旋信号的弛豫长度由能量弛豫长度确定,并且与通常的自旋弛豫长度相比可能极大。可能存在两种类型的信号:由于非热的准粒子分布和由于热的过热电子分布。它们具有不同的衰减长度,并且可以通过它们对所施加电压的不同依赖性来区分。非热信号的衰减长度由电子-电子散射速率确定,由于超导性而重新归一化。热信号的衰减长度由能量离开电子子系统的长度决定,在特殊条件下可能很大。讨论了该理论在赛曼分裂和交换分裂超导体中自旋弛豫的最新实验数据中的应用。尤其是,它可以解释在塞曼分裂超导体中实验观察到的极高的自旋弛豫长度,以及它们随磁场和施加电压的增长。

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