| Literature DB >> 35577328 |
Lisa-Marie Kern1, Bastian Pfau1, Victor Deinhart1,2,3, Michael Schneider1, Christopher Klose1, Kathinka Gerlinger1, Steffen Wittrock1, Dieter Engel1, Ingo Will1, Christian M Günther4, Rein Liefferink5, Johan H Mentink5, Sebastian Wintz6, Markus Weigand3, Meng-Jie Huang7, Riccardo Battistelli3, Daniel Metternich3, Felix Büttner3, Katja Höflich2,3, Stefan Eisebitt1,8.
Abstract
Magnetic skyrmions are quasiparticles with nontrivial topology, envisioned to play a key role in next-generation data technology while simultaneously attracting fundamental research interest due to their emerging topological charge. In chiral magnetic multilayers, current-generated spin-orbit torques or ultrafast laser excitation can be used to nucleate isolated skyrmions on a picosecond time scale. Both methods, however, produce randomly arranged skyrmions, which inherently limits the precision on the location at which the skyrmions are nucleated. Here, we show that nanopatterning of the anisotropy landscape with a He+-ion beam creates well-defined skyrmion nucleation sites, thereby transforming the skyrmion localization into a deterministic process. This approach allows control of individual skyrmion nucleation as well as guided skyrmion motion with nanometer-scale precision, which is pivotal for both future fundamental studies of skyrmion dynamics and applications.Entities:
Keywords: current-induced and laser-induced dynamics; ion irradiation; magnetic racetrack; magnetic skyrmions; soft X-ray imaging
Year: 2022 PMID: 35577328 PMCID: PMC9137908 DOI: 10.1021/acs.nanolett.2c00670
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 12.262