论文标题

在非本地镁旋转旋转传播检测到的交换旋转超导体中,巨型过渡状态增强了准颗粒自旋式效应

Giant transition-state enhancement of quasiparticle spin-Hall effect in an exchange-spin-split superconductor detected by non-local magnon spin-transport

论文作者

Jeon, Kun-Rok, Jeon, Jae-Chun, Zhou, Xilin, Migliorini, Andrea, Yoon, Jiho, Parkin, Stuart S. P.

论文摘要

尽管最近的实验和理论表明,在具有Zeeman或Exchange Spin-Splitting的超导体(SC)基于超导体(SC)的设备中,非均衡性准粒子(QP)的各种外来传输性能如何,但QP与登录旋转电流的相互作用如何仍然难以捉摸。在这里,使用非本地镁旋转传输设备,该设备在铁磁性绝缘体(Y3FE5O12)的顶部使用单sc(nb)作为镁旋转探测器,我们表明,质量降低的质量可通过质量增加的速度(ishe)在质量上得到质量的速度(ISHE)可以很好地增强质量的质量(QP),从而表明QP旋转的转换效率很大,可以很好地增强速度。状态,尤其是当它的界面超导间隙与镁自旋积累匹配时。通过随电流密度和SC厚度变化的系统测量,我们确定了QP密度密度的超导相干峰并交换自旋分解,从而产生了较大的自旋激发,同时保留了适度的QP电荷 - 平衡 - 平衡弛豫,是巨大的QP ISHE负责。后一种交换场修饰的QP松弛通过空间解析的测量结果证明,随着自旋分裂NB上的电触点的分离而变化。

Although recent experiments and theories have shown a variety of exotic transport properties of non-equilibrium quasiparticles (QPs) in superconductor (SC)-based devices with either Zeeman or exchange spin-splitting, how QP interplays with magnon spin currents remains elusive. Here, using non-local magnon spin-transport devices where a singlet SC (Nb) on top of a ferrimagnetic insulator (Y3Fe5O12) serves as a magnon spin detector, we demonstrate that the conversion efficiency of magnon spin to QP charge via inverse spin-Hall effect (iSHE) in such an exchange-spin-split SC can be greatly enhanced by up to 3 orders of magnitude compared with that in the normal state, particularly when its interface superconducting gap matches the magnon spin accumulation. Through systematic measurements with varying the current density and SC thickness, we identify that superconducting coherence peaks and exchange spin-splitting of the QP density-of-states, yielding a larger spin excitation while retaining a modest QP charge-imbalance relaxation, are responsible for the giant QP iSHE. The latter exchange-field-modified QP relaxation is experimentally proved by spatially resolved measurements with varying the separation of electrical contacts on the spin-split Nb.

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