Recent progress on electron- and magnon-mediated torques
Recent progress on electron- and magnon-mediated torques
The growing demand for artificial intelligence and complex computing has underscored the urgent need for advanced data storage technologies. Spin-orbit torque (SOT) has emerged as a leading candidate for high-speed, high-density magnetic random-access memory due to its ultrafast switching speed and low power consumption. This review systematically explores the generation and switching mechanisms of electron-mediated torques (including both conventional SOTs and orbital torques) and magnon-mediated torques. We discuss key materials that enable these effects: heavy metals, topological insulators, low-crystal-symmetry materials, non-collinear antiferromagnets, and altermagnets for conventional SOTs; 3d, 4d, and 5d transition metals for orbital torques; and antiferromagnetic insulator NiO- and multiferroic BiFeO3-based sandwich structures for magnon torques. We emphasize that although key components of SOT devices have been demonstrated, numerous promising materials and critical questions regarding their underlying mechanisms remain to be explored. Therefore, this field represents a dynamic and rapidly evolving frontier in spintronics, offering significant potential for advancing next-generation information storage and computational technologies.
Jia-Min Lai、Bingyue Bian、Zhonghai Yu、Kaiwei Guo、Yajing Zhang、Pengnan Zhao、Xiaoqian Zhang、Chunyang Tang、Jiasen Cao、Zhiyong Quan、Fei Wang、Xiaohong Xu
电工材料电工基础理论
Jia-Min Lai,Bingyue Bian,Zhonghai Yu,Kaiwei Guo,Yajing Zhang,Pengnan Zhao,Xiaoqian Zhang,Chunyang Tang,Jiasen Cao,Zhiyong Quan,Fei Wang,Xiaohong Xu.Recent progress on electron- and magnon-mediated torques[EB/OL].(2025-05-14)[2025-06-14].https://arxiv.org/abs/2505.09257.点此复制
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