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Direct observation of the skyrmion Hall effect

Authors :
Jiang, Wanjun
Zhang, Xichao
Yu, Guoqiang
Zhang, Wei
Wang, Xiao
Benjamin Jungfleisch, M.
Pearson, John E.
Cheng, Xuemei
Heinonen, Olle
Wang, Kang L.
Zhou, Yan
Hoffmann, Axel
te Velthuis, Suzanne G. E.
Source :
Nature Physics; February 2017, Vol. 13 Issue: 2 p162-169, 8p
Publication Year :
2017

Abstract

The well-known Hall effect describes the transverse deflection of charged particles (electrons/holes) as a result of the Lorentz force. Similarly, it is intriguing to examine if quasi-particles without an electric charge, but with a topological charge, show related transverse motion. Magnetic skyrmions with a well-defined spin texture with a unit topological charge serve as good candidates to test this hypothesis. In spite of the recent progress made on investigating magnetic skyrmions, direct observation of the skyrmion Hall effect has remained elusive. Here, by using a current-induced spin Hall spin torque, we experimentally demonstrate the skyrmion Hall effect, and the resultant skyrmion accumulation, by driving skyrmions from the creep-motion regime (where their dynamics are influenced by pinning defects) into the steady-flow-motion regime. The experimental observation of transverse transport of skyrmions due to topological charge may potentially create many exciting opportunities, such as topological selection.

Details

Language :
English
ISSN :
17452473 and 17452481
Volume :
13
Issue :
2
Database :
Supplemental Index
Journal :
Nature Physics
Publication Type :
Periodical
Accession number :
ejs41242815
Full Text :
https://doi.org/10.1038/nphys3883