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Spin-transfer torques for domain wall motion in antiferromagnetically coupled ferrimagnets

Authors :
Yaroslav Tserkovnyak
Arata Tsukamoto
Teruo Ono
Woo Seung Ham
Duck-Ho Kim
Hiroki Yoshikawa
Kyung Jin Lee
Kab-Jin Kim
Yasuhiro Futakawa
Takahiro Moriyama
Takaya Okuno
Tomoe Nishimura
Se Hyeok Oh
Yuushou Hirata
Se Kwon Kim
Yoichi Shiota
Source :
Nature Electronics. 2:389-393
Publication Year :
2019
Publisher :
Springer Science and Business Media LLC, 2019.

Abstract

Antiferromagnetic materials are outstanding candidates for next generation spintronic applications, because their ultrafast spin dynamics makes it possible to realize several orders of magnitude higher-speed devices than conventional ferromagnetic materials1. Though spin-transfer torque (STT) is a key for electrical control of spins as successfully demonstrated in ferromagnetic spintronics, experimental understanding of STT in antiferromagnets has been still lacking despite a number of pertinent theoretical studies2-5. Here, we report experimental results on the effects of STT on domain-wall (DW) motion in antiferromagnetically-coupled ferrimagnets. We find that non-adiabatic STT acts like a staggered magnetic field and thus can drive DWs effectively. Moreover, the non-adiabaticity parameter {\beta} of STT is found to be significantly larger than the Gilbert damping parameter {\alpha}, challenging our conventional understanding of the non-adiabatic STT based on ferromagnets as well as leading to fast current-induced antiferromagnetic DW motion. Our study will lead to further vigorous exploration of STT for antiferromagnetic spin textures for fundamental physics on spin-charge interaction as wells for efficient electrical control of antiferromagnetic devices.<br />Comment: 19 pages, 4 figures

Details

ISSN :
25201131
Volume :
2
Database :
OpenAIRE
Journal :
Nature Electronics
Accession number :
edsair.doi.dedup.....c8b0036007d0a5de7c3508f232b897e0
Full Text :
https://doi.org/10.1038/s41928-019-0303-5