自旋波
凝聚态物理
反铁磁性
自旋电子学
物理
自旋极化
反平行(数学)
自旋(空气动力学)
磁场
铁磁性
量子力学
电子
热力学
作者
Chuan‐Pu Liu,Shizhe Wu,Jianyu Zhang,Jilei Chen,Jinjun Ding,Ji Ma,Yuelin Zhang,Yuanwei Sun,Sa Tu,Hanchen Wang,Pengfei Liu,Chexin Li,Yong Jiang,Peng Gao,Dapeng Yu,Jiang Xiao,R. A. Duine,Mingzhong Wu,Ce‐Wen Nan,Jinxing Zhang
标识
DOI:10.1038/s41565-019-0429-7
摘要
Spin waves may constitute key components of low-power spintronic devices. Antiferromagnetic-type spin waves are innately high-speed, stable and dual-polarized. So far, it has remained challenging to excite and manipulate antiferromagnetic-type propagating spin waves. Here, we investigate spin waves in periodic 100-nm-wide stripe domains with alternating upward and downward magnetization in La0.67Sr0.33MnO3 thin films. In addition to ordinary low-frequency modes, a high-frequency mode around 10 GHz is observed and propagates along the stripe domains with a spin-wave dispersion different from the low-frequency mode. Based on a theoretical model that considers two oppositely oriented coupled domains, this high-frequency mode is accounted for as an effective antiferromagnetic spin-wave mode. The spin waves exhibit group velocities of 2.6 km s−1 and propagate even at zero magnetic bias field. An electric current pulse with a density of only 105 A cm−2 can controllably modify the orientation of the stripe domains, which opens up perspectives for reconfigurable magnonic devices. Current pulses of 105 A cm−2 can control the orientation of 100-nm-wide stripe domains in La0.67Sr0.33MnO3 and spin waves of 10 GHz can propagate along these domains with a group velocity of 2.6 km s−1.
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