Experimental identification of two distinct skyrmion collapse mechanisms

dc.contributorHáskóli Íslandsen_US
dc.contributorUniversity of Icelanden_US
dc.contributor.authorMuckel, Florian
dc.contributor.authorvon Malottki, Stephan
dc.contributor.authorHoll, Christian
dc.contributor.authorPestka, Benjamin
dc.contributor.authorPratzer, Marco
dc.contributor.authorBessarab, Pavel
dc.contributor.authorHeinze, Stefan
dc.contributor.authorMorgenstern, Markus
dc.contributor.departmentRaunvísindastofnun (HÍ)en_US
dc.contributor.departmentScience Institute (UI)en_US
dc.contributor.schoolVerkfræði- og náttúruvísindasvið (HÍ)en_US
dc.contributor.schoolSchool of Engineering and Natural Sciences (UI)en_US
dc.date.accessioned2022-02-25T10:11:26Z
dc.date.available2022-02-25T10:11:26Z
dc.date.issued2021-01-04
dc.descriptionPost-print / Lokaútgáfa höfundaren_US
dc.description.abstractMagnetic skyrmions are key candidates for applications in memory, logic and neuromorphic computing. An essential property is their topological protection that is caused by the swirling spin texture and described by a robust integer winding number. However, this protection is strictly enforced only in the continuum, and so the atomic lattice present in all real materials leaves a loophole for switching the winding number. Hence, understanding the microscopic mechanism of this unwinding is crucial for enhancing the stability of skyrmions. Here we use spin-polarized scanning tunnelling microscopy to locally probe skyrmion annihilation by individual hot electrons. We tune the collapse rate by up to four orders of magnitude by using an in-plane magnetic field, and observe distinct transition rate maps that either are radial symmetric or exhibit an excentric hotspot. We compare these maps to atomistic spin simulations based on parameters obtained from first-principles calculations and find that the maps are explained by a radial symmetric collapse at zero in-plane magnetic field and a transition to the recently predicted chimera collapse at finite in-plane magnetic fields. These insights into the transient state of the skyrmion collapse will enable future enhancement of skyrmion stability and designs for intentional skyrmion switches.en_US
dc.description.sponsorshipWe gratefully acknowledge helpful discussions with S. Lounis, S. Bl¨ugel, G. Volovskiy, A. Schlenhoff, M. Liebmann, M. A. Goerzen, T. Sigurj´onsd´ottir and financial support by the German Science Foundation (DFG) via PR 1098/1-1, the Russian Science Foundation (Grant No.19-72-10138), the Icelandic Research Fund (Grant No.184949-052), and the Alexander von Humboldt Foundationen_US
dc.description.versionPeer Revieweden_US
dc.format.extent395-402en_US
dc.identifier.citationF. Muckel, S. von Malottki, C. Holl, B. Pestka, M. Pratzer, P.F. Bessarab, S. Heinze, & M. Morgenstern. Experimental identification of two distinct skyrmion collapse mechanisms. Nature Physics 17, 395-402 (2021). doi: 10.1038/s41567-020-01101-2en_US
dc.identifier.doi10.1038/s41567-020-01101-2
dc.identifier.issn1745-2473
dc.identifier.issn1745-2481 (eISSN)
dc.identifier.journalNature Physicsen_US
dc.identifier.urihttps://hdl.handle.net/20.500.11815/2924
dc.language.isoenen_US
dc.publisherSpringer Natureen_US
dc.relation.ispartofseriesNature Physics;17
dc.rightsinfo:eu-repo/semantics/embargoedAccessen_US
dc.subjectGeneral Physics and Astronomyen_US
dc.subjectEðlisfræðien_US
dc.subject.meshSpintronicsen_US
dc.subject.meshTopological defectsen_US
dc.subject.meshScanning probe microscopyen_US
dc.subject.meshmagnetic properties and materialsen_US
dc.titleExperimental identification of two distinct skyrmion collapse mechanismsen_US
dc.typeinfo:eu-repo/semantics/articleen_US
dcterms.license6 months embargo /6 mánaða birtingartöf samkv. stefnu útgefandaen_US

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