论文标题

由FER的超快磁化驱动的自旋电流

Spin current driven by ultrafast magnetization of FeRh

论文作者

Kang, Kyuhwe, Omura, Hiroki, Lee, Oukjae, Lee, Kyung-Jin, Lee, Hyun-Woo, Taniyama, Tomoyasu, Choi, Gyung-Min

论文摘要

激光诱导的超快消灭是一个重要的现象,可以说是固体中角动量动力学的最终限制。不幸的是,动力学的许多方面尚不清楚,除了消除电磁最终将角动量转移到晶格中。特别是,对电子旋转电流的角色进行了争论。在这里,我们通过实验探测相反现象中的自旋电流,即激光诱导的FERH的超快磁化,激光泵脉冲会启动角动量堆积,而不是其耗散。使用时间分辨的磁光kerr效应,我们直接测量FERH/CU异质结构中的超磁驱动的自旋电流。即使在此相反的过程中,自旋滤波器效应可以忽略不计,但发现了旋转电流与净磁化变化速率之间的牢固相关性。该结果意味着,角动量的积累是通过从电子浴(供应商)转移到镁浴(接收器)的,然后是角动量(旋转电流)和角动量向声子浴(自旋弛豫)的空间传输来实现的。

Laser-induced ultrafast demagnetization is an important phenomenon that probes arguably ultimate limits of the angular momentum dynamics in solid. Unfortunately, many aspects of the dynamics remain unclear except that the demagnetization transfers the angular momentum eventually to the lattice. In particular, roles of electron-carried spin current are debated. Here we experimentally probe the spin current in the opposite phenomenon, i.e., laser-induced ultrafast magnetization of FeRh, where the laser pump pulse initiates the angular momentum build-up rather than its dissipation. Using the time-resolved magneto-optical Kerr effect, we directly measure the ultrafast-magnetization-driven spin current in a FeRh/Cu heterostructure. Strong correlation between the spin current and the net magnetization change rate of FeRh is found even though the spin filter effect is negligible in this opposite process. This result implies that the angular momentum build-up is achieved by an angular momentum transfer from the electron bath (supplier) to the magnon bath (receiver) and followed by the spatial transport of angular momentum (spin current) and dissipation of angular momentum to the phonon bath (spin relaxation).

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