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The 2020 skyrmionics roadmap

Authors :
Christian Pfleiderer
Stuart S. P. Parkin
Yasuhiro Tokura
K. von Bergmann
Vincent Cros
Albert Fert
Maxim Mostovoy
Naoto Nagaosa
Yasujiro Taguchi
Sergiy Mankovsky
Theodore L. Monchesky
Jiadong Zang
Nicolas Reyren
Markus Garst
Hubert Ebert
Karin Everschor-Sitte
Christian H. Back
Tianping Ma
Achim Rosch
Theory of Condensed Matter
Unité mixte de physique CNRS/Thales (UMPhy CNRS/THALES)
THALES-Centre National de la Recherche Scientifique (CNRS)
Chemistry and Biochemistry
University of Munich
Zernike Institute of Advanced Materials
University of Groningen [Groningen]
Cross-Correlated Materials Research Group (CMRG)
ASI RIKEN
Max Planck Institute of Microstructure Physics
Institute for Applied Physics [Hamburg]
University of Hamburg
THALES [France]-Centre National de la Recherche Scientifique (CNRS)
ANR-17-CE24-0025,TOPSKY,Propriétés topologiques des skyrmions magnétiques et opportunitiés pour le dévelopement de nouveaux dispositifs spintroniques(2017)
European Project: 824123,SKYTOP
European Project: 665095,H2020,H2020-FETOPEN-2014-2015-RIA,MAGicSky(2015)
Source :
Journal of Physics D-Applied Physics, 53(36):363001. IOP PUBLISHING LTD, Journal of Physics D: Applied Physics, Journal of Physics D: Applied Physics, IOP Publishing, 2020, 16 (13), pp.1907450. ⟨10.1088/1361-6463/ab8418⟩, Journal of Physics D: Applied Physics, 2020, 16 (13), pp.1907450. ⟨10.1088/1361-6463/ab8418⟩, Journal of physics / D, 53 (36), Art.Nr. 363001
Publication Year :
2020

Abstract

The notion of non-trivial topological winding in condensed matter systems represents a major area of present-day theoretical and experimental research. Magnetic materials offer a versatile platform that is particularly amenable for the exploration of topological spin solitons in real space such as skyrmions. First identified in non-centrosymmetric bulk materials, the rapidly growing zoology of materials systems hosting skyrmions and related topological spin solitons includes bulk compounds, surfaces, thin films, heterostructures, nano-wires and nano-dots. This underscores an exceptional potential for major breakthroughs ranging from fundamental questions to applications as driven by an interdisciplinary exchange of ideas between areas in magnetism which traditionally have been pursued rather independently. The skyrmionics roadmap provides a review of the present state of the art and the wide range of research directions and strategies currently under way. These are, for instance, motivated by the identification of the fundamental structural properties of skyrmions and related textures, processes of nucleation and annihilation in the presence of non-trivial topological winding, an exceptionally efficient coupling to spin currents generating spin transfer torques at tiny current densities, as well as the capability to purpose-design broad-band spin dynamic and logic devices.<br />J. Phys. D, accepted for publication

Details

Language :
English
ISSN :
00223727, 13616463, 00385646, 09538984, 00344885, 13672630, and 00223719
Database :
OpenAIRE
Journal :
Journal of Physics D-Applied Physics, 53(36):363001. IOP PUBLISHING LTD, Journal of Physics D: Applied Physics, Journal of Physics D: Applied Physics, IOP Publishing, 2020, 16 (13), pp.1907450. ⟨10.1088/1361-6463/ab8418⟩, Journal of Physics D: Applied Physics, 2020, 16 (13), pp.1907450. ⟨10.1088/1361-6463/ab8418⟩, Journal of physics / D, 53 (36), Art.Nr. 363001
Accession number :
edsair.doi.dedup.....a3dfc89947e043563d11d5520d255857
Full Text :
https://doi.org/10.1088/1361-6463/ab8418⟩