自旋电子学
反铁磁性
凝聚态物理
铁磁性
物理
自旋(空气动力学)
神经形态工程学
自旋工程
自旋极化
量子力学
计算机科学
电子
人工神经网络
热力学
机器学习
作者
Jakub Železný,P. Wadley,K. Olejník,Axel Hoffmann,Hideo Ohno
出处
期刊:Nature Physics
[Nature Portfolio]
日期:2018-02-23
卷期号:14 (3): 220-228
被引量:431
标识
DOI:10.1038/s41567-018-0062-7
摘要
Ferromagnets are key materials for sensing and memory applications. In contrast, antiferromagnets, which represent the more common form of magnetically ordered materials, have found less practical application beyond their use for establishing reference magnetic orientations via exchange bias. This might change in the future due to the recent progress in materials research and discoveries of antiferromagnetic spintronic phenomena suitable for device applications. Experimental demonstration of the electrical switching and detection of the Néel order open a route towards memory devices based on antiferromagnets. Apart from the radiation and magnetic-field hardness, memory cells fabricated from antiferromagnets can be inherently multilevel, which could be used for neuromorphic computing. Switching speeds attainable in antiferromagnets far exceed those of ferromagnetic and semiconductor memory technologies. Here, we review the recent progress in electronic spin-transport and spin-torque phenomena in antiferromagnets that are dominantly of the relativistic quantum-mechanical origin. We discuss their utility in pure antiferromagnetic or hybrid ferromagnetic/antiferromagnetic memory devices. As part of a focus on antiferromagnetic spintronics, this Review considers the role of spin transport and spin torque in potential antiferromagnetic memory devices.
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