Magnetic Imaging and Domain Nucleation in CrSBr Down to the 2D Limit

Author:

Zur Yishay12ORCID,Noah Avia12ORCID,Boix‐Constant Carla3ORCID,Mañas‐Valero Samuel3ORCID,Fridman Nofar12ORCID,Rama‐Eiroa Ricardo45ORCID,Huber Martin E.6ORCID,Santos Elton J. G.457ORCID,Coronado Eugenio3ORCID,Anahory Yonathan12ORCID

Affiliation:

1. The Racah Institute of Physics The Hebrew University Jerusalem 9190401 Israel

2. Center for Nanoscience and Nanotechnology Hebrew University of Jerusalem Jerusalem 91904 Israel

3. Instituto de Ciencia Molecular (ICMol) Universitat de València Catedrático José Beltrán 2 Paterna 46980 Spain

4. Donostia International Physics Center (DIPC) Basque Country Donostia‐San Sebastián 20018 Spain

5. Institute for Condensed Matter Physics and Complex Systems School of Physics and Astronomy University of Edinburgh Edinburgh EH93FD UK

6. Departments of Physics and Electrical Engineering University of Colorado Denver Denver CO 80217 USA

7. Higgs Centre for Theoretical Physics University of Edinburgh Edinburgh EH93FD UK

Abstract

AbstractRecent advancements in 2D materials have revealed the potential of van der Waals magnets, and specifically of their magnetic anisotropy that allows applications down to the 2D limit. Among these materials, CrSBr has emerged as a promising candidate, because its intriguing magnetic and electronic properties have appeal for both fundamental and applied research in spintronics or magnonics. In this work, nano‐SQUID‐on‐tip (SOT) microscopy is used to obtain direct magnetic imaging of CrSBr flakes with thicknesses ranging from monolayer (N = 1) to few‐layer (N = 5). The ferromagnetic order is preserved down to the monolayer, while the antiferromagnetic coupling of the layers starts from the bilayer case. For odd layers, at zero applied magnetic field, the stray field resulting from the uncompensated layer is directly imaged. The progressive spin reorientation along the out‐of‐plane direction (hard axis) is also measured with a finite applied magnetic field, allowing evaluation of the anisotropy constant, which remains stable down to the monolayer and is close to the bulk value. Finally, by selecting the applied magnetic field protocol, the formation of Néel magnetic domain walls is observed down to the single‐layer limit.

Funder

European Research Council

Federación Española de Enfermedades Raras

Generalitat Valenciana

Engineering and Physical Sciences Research Council

Israel Science Foundation

H2020 Marie Skłodowska-Curie Actions

Networks of Centres of Excellence of Canada

Graphene Flagship

H2020 European Research Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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