TY - JOUR
T1 - Ferrimagnets for spintronic devices
T2 - From materials to applications
AU - Zhang, Yue
AU - Feng, Xueqiang
AU - Zheng, Zhenyi
AU - Zhang, Zhizhong
AU - Lin, Kelian
AU - Sun, Xiaohan
AU - Wang, Guanda
AU - Wang, Jinkai
AU - Wei, Jiaqi
AU - Vallobra, Pierre
AU - He, Yu
AU - Wang, Zixi
AU - Chen, Lei
AU - Zhang, Kun
AU - Xu, Yong
AU - Zhao, Weisheng
N1 - Publisher Copyright:
© 2023 Author(s).
PY - 2023/3
Y1 - 2023/3
N2 - Spintronic devices use spin instead of charge to process information and are widely considered as promising candidates for next-generation electronic devices. In past decades, the main motivation in spintronics has been to discover new mechanisms and novel material systems to improve both device performance and the application prospects of spintronics. Recently, researchers have found that ferrimagnetic materials - in which sublattices are coupled antiferromagnetically - offer an emerging platform for realizing high-density, high-speed, and low-power-consumption memory and logic functions. Within such a ferrimagnetic class, vanishing magnetization and ultrafast magnetic dynamics can be achieved by adjusting chemical composition and temperature, among other parameters. Meanwhile, unlike for antiferromagnets, conventional electrical read-write methods remain suitable for ferrimagnets, which is beneficial for applications. In this review, an abundant class of ferrimagnets including oxides and alloys is surveyed, and unique magnetic dynamics and effective methods for manipulating the magnetic states of ferrimagnets are discussed. Finally, novel storage and computing devices based on ferrimagnets are considered, as there are some challenges to be addressed in future applications of ferrimagnets.
AB - Spintronic devices use spin instead of charge to process information and are widely considered as promising candidates for next-generation electronic devices. In past decades, the main motivation in spintronics has been to discover new mechanisms and novel material systems to improve both device performance and the application prospects of spintronics. Recently, researchers have found that ferrimagnetic materials - in which sublattices are coupled antiferromagnetically - offer an emerging platform for realizing high-density, high-speed, and low-power-consumption memory and logic functions. Within such a ferrimagnetic class, vanishing magnetization and ultrafast magnetic dynamics can be achieved by adjusting chemical composition and temperature, among other parameters. Meanwhile, unlike for antiferromagnets, conventional electrical read-write methods remain suitable for ferrimagnets, which is beneficial for applications. In this review, an abundant class of ferrimagnets including oxides and alloys is surveyed, and unique magnetic dynamics and effective methods for manipulating the magnetic states of ferrimagnets are discussed. Finally, novel storage and computing devices based on ferrimagnets are considered, as there are some challenges to be addressed in future applications of ferrimagnets.
UR - https://www.scopus.com/pages/publications/85145879271
U2 - 10.1063/5.0104618
DO - 10.1063/5.0104618
M3 - 文献综述
AN - SCOPUS:85145879271
SN - 1931-9401
VL - 10
JO - Applied Physics Reviews
JF - Applied Physics Reviews
IS - 1
M1 - 011301
ER -