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Spin-transfer torques for domain wall motion in antiferromagnetically coupled ferrimagnets
- 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
- Subjects :
- Physics
Condensed Matter - Materials Science
Condensed Matter - Mesoscale and Nanoscale Physics
Condensed matter physics
Spintronics
Spins
Spin-transfer torque
Materials Science (cond-mat.mtrl-sci)
FOS: Physical sciences
Electronic, Optical and Magnetic Materials
Magnetic field
Computer Science::Hardware Architecture
Condensed Matter::Materials Science
Domain wall (magnetism)
Ferromagnetism
Ferrimagnetism
Mesoscale and Nanoscale Physics (cond-mat.mes-hall)
Antiferromagnetism
Condensed Matter::Strongly Correlated Electrons
Electrical and Electronic Engineering
Instrumentation
Subjects
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