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Atomically sharp domain walls in an antiferromagnet

Authors :
Ministry of Education, Youth and Sports (Czech Republic)
University of Nottingham
European Commission
Max Planck Society
Center for Nanophase Materials Sciences (US)
Swedish Research Council
Carl Tryggers Foundation
Olle Engkvist Foundation
Ministerio de Ciencia, Innovación y Universidades (España)
Krizek, Filip
Reimers, Sonka
Kašpar, Zdeněk
Marmodoro, Alberto
Michalicka, Jan
Man, Ondřej
Edström, Alexander
Amin, Oliver J
Edmonds, Kevin W
Campion, Richard P
Maccherozzi, Francesco
Dhesi, Samjeet S
Zubáč, Jan
Kriegner, Dominik
Carbone, Dina
Železný, Jakub
Výborný, Karel
Olejník, Kamil
Novák, Vít
Idrobo, Juan Carlos
Wadley, Peter
Jungwirth, Tomas
Ministry of Education, Youth and Sports (Czech Republic)
University of Nottingham
European Commission
Max Planck Society
Center for Nanophase Materials Sciences (US)
Swedish Research Council
Carl Tryggers Foundation
Olle Engkvist Foundation
Ministerio de Ciencia, Innovación y Universidades (España)
Krizek, Filip
Reimers, Sonka
Kašpar, Zdeněk
Marmodoro, Alberto
Michalicka, Jan
Man, Ondřej
Edström, Alexander
Amin, Oliver J
Edmonds, Kevin W
Campion, Richard P
Maccherozzi, Francesco
Dhesi, Samjeet S
Zubáč, Jan
Kriegner, Dominik
Carbone, Dina
Železný, Jakub
Výborný, Karel
Olejník, Kamil
Novák, Vít
Idrobo, Juan Carlos
Wadley, Peter
Jungwirth, Tomas
Publication Year :
2022

Abstract

The interest in understanding scaling limits of magnetic textures such as domain walls spans the entire field of magnetism from its physical fundamentals to applications in information technologies. Here, we explore antiferromagnetic CuMnAs in which imaging by x-ray photoemission reveals the presence of magnetic textures down to nanoscale, reaching the detection limit of this established microscopy in antiferromagnets. We achieve atomic resolution by using differential phase-contrast imaging within aberration-corrected scanning transmission electron microscopy. We identify abrupt domain walls in the antiferromagnetic film corresponding to the Néel order reversal between two neighboring atomic planes. Our work stimulates research of magnetic textures at the ultimate atomic scale and sheds light on electrical and ultrafast optical antiferromagnetic devices with magnetic field-insensitive neuromorphic functionalities.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1333185640
Document Type :
Electronic Resource