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自旋轨道电子学器件及其应用前景。

Prospect of Spin-Orbitronic Devices and Their Applications.

作者信息

Cao Yi, Xing Guozhong, Lin Huai, Zhang Nan, Zheng Houzhi, Wang Kaiyou

机构信息

Beijing Academy of Quantum Information Sciences, Beijing 100193, P. R. China.

Key Laboratory of Microelectronic Devices & Integrated Technology, Institute of Microelectronics, Chinese Academy of Sciences, Beijing 100029, P. R. China.

出版信息

iScience. 2020 Sep 28;23(10):101614. doi: 10.1016/j.isci.2020.101614. eCollection 2020 Oct 23.

Abstract

Science, engineering, and medicine ultimately demand fast information processing with ultra-low power consumption. The recently developed spin-orbit torque (SOT)-induced magnetization switching paradigm has been fueling opportunities for spin-orbitronic devices, i.e., enabling SOT memory and logic devices at sub-nano second and sub-picojoule regimes. Importantly, spin-orbitronic devices are intrinsic of nonvolatility, anti-radiation, unlimited endurance, excellent stability, and CMOS compatibility, toward emerging applications, e.g., processing in-memory, neuromorphic computing, probabilistic computing, and 3D magnetic random access memory. Nevertheless, the cutting-edge SOT-based devices and application remain at a premature stage owing to the lack of scalable methodology on the field-free SOT switching. Moreover, spin-orbitronics poises as an interdisciplinary field to be driven by goals of both fundamental discoveries and application innovations, to open fascinating new paths for basic research and new line of technologies. In this perspective, the specific challenges and opportunities are summarized to exert momentum on both research and eventual applications of spin-orbitronic devices.

摘要

科学、工程和医学最终都需要以超低功耗进行快速信息处理。最近开发的自旋轨道扭矩(SOT)诱导的磁化切换范式为自旋轨道电子器件带来了机遇,即在亚纳秒和亚皮焦耳量级实现SOT存储器和逻辑器件。重要的是,自旋轨道电子器件具有非易失性、抗辐射性、无限耐久性、出色的稳定性以及与CMOS的兼容性等固有特性,适用于新兴应用,例如内存内处理、神经形态计算、概率计算和3D磁性随机存取存储器。然而,由于缺乏无场SOT切换的可扩展方法,基于SOT的前沿器件和应用仍处于早期阶段。此外,自旋轨道电子学作为一个跨学科领域,由基础发现和应用创新的目标驱动,为基础研究和新技术领域开辟了迷人的新路径。从这个角度出发,总结了具体的挑战和机遇,以推动自旋轨道电子器件的研究和最终应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1188/7559259/77463b714d61/fx1.jpg

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