Identifying the octupole antiferromagnetic domain orientation in Mn3NiN by scanning anomalous Nernst effect microscopy

Author:

Johnson F.1ORCID,Kimák J.2ORCID,Zemen J.3ORCID,Šobáň Z.4ORCID,Schmoranzerová E.2ORCID,Godinho J.24,Němec P.2ORCID,Beckert S.5,Reichlová H.45,Boldrin D.16ORCID,Wunderlich J.7,Cohen L. F.1ORCID

Affiliation:

1. Blackett Laboratory, Imperial College, Prince Consort Rd., London SW7 2AZ, United Kingdom

2. Faculty of Mathematics and Physics, Charles University, Prague 121 16, Czech Republic

3. Faculty of Electrical Engineering, Czech Technical University, Technicka 2, Prague 166 27, Czech Republic

4. Institute of Physics, Czech Academy of Sciences, Prague 181 21, Czech Republic

5. Institut für Festkörper- und Materialphysik, Technische Universität Dresden, 01062 Dresden, Germany

6. SUPA, School of Physics and Astronomy, University of Glasgow, Glasgow G12 8QQ, United Kingdom

7. Institute of Experimental and Applied Physics, University of Regensburg, 93051 Regensburg, Germany

Abstract

The intrinsic anomalous Nernst effect in a magnetic material is governed by the Berry curvature at the Fermi energy and can be realized in non-collinear antiferromagnets with vanishing magnetization. Thin films of (001)-oriented Mn3NiN have their chiral antiferromagnetic structure located in the (111) plane facilitating the anomalous Nernst effect unusually in two orthogonal in-plane directions. The sign of each component of the anomalous Nernst effect is determined by the local antiferromagnetic domain state. In this work, a temperature gradient is induced in a 50 nm thick Mn3NiN two micrometer-size Hall cross by a focused scanning laser beam, and the spatial distribution of the anomalous Nernst voltage is used to image and identify the octupole macrodomain arrangement. Although the focused laser beam width may span many individual domains, cooling from room temperature to the antiferromagnetic transition temperature in an in-plane magnetic field prepares the domain state, producing a checkerboard pattern resulting from the convolution of contributions from each domain. These images together with atomistic and micromagnetic simulations suggest an average macrodomain of the order of 1 μm2.

Funder

Hitachi Cambridge

Engineering and Physical Sciences Research Council

Grant Agency of the Czech Republic

EU FET Open RIA

Ministry of Education, Youth and Sports of the Czech Republic

Leverhulme Trust

University of Glasgow

Czech Ministry of Education

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

Reference41 articles.

1. Domain structure and domain wall dynamics in topological chiral antiferromagnets from the viewpoint of magnetic octupole

2. Spintronics on chiral objects

3. Giant Piezomagnetism in Mn3NiN

4. Anomalous Hall effect in noncollinear antiferromagnetic Mn3NiN thin films

5. F. Johnson , J. Zázvorka , L. Beran , D. Boldrin , L. F. Cohen , J. Zemen , and M. Veis , “ Room temperature weak collinear ferrimagnet with symmetry driven, large intrinsic magneto-optic and magneto-transport signatures,” arXiv:2111.13498 (2021).

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