Skyrmions in synthetic antiferromagnets and their nucleation via electrical current and ultra-fast laser illumination

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作者
Roméo Juge
Naveen Sisodia
Joseba Urrestarazu Larrañaga
Qiang Zhang
Van Tuong Pham
Kumari Gaurav Rana
Brice Sarpi
Nicolas Mille
Stefan Stanescu
Rachid Belkhou
Mohamad-Assaad Mawass
Nina Novakovic-Marinkovic
Florian Kronast
Markus Weigand
Joachim Gräfe
Sebastian Wintz
Simone Finizio
Jörg Raabe
Lucia Aballe
Michael Foerster
Mohamed Belmeguenai
Liliana D. Buda-Prejbeanu
Johan Pelloux-Prayer
Justin M. Shaw
Hans T. Nembach
Laurent Ranno
Gilles Gaudin
Olivier Boulle
机构
[1] Univ. Grenoble Alpes,Helmholtz
[2] CNRS,Zentrum Berlin für Materialien und Energie GmbH
[3] CEA,Quantum Electromagnetics Division
[4] SPINTEC,Department of Physics
[5] Synchrotron SOLEIL,undefined
[6] L’Orme des Merisiers,undefined
[7] Helmholtz-Zentrum Berlin für Materialien und Energie,undefined
[8] Hahn-Meitner-Platz 1,undefined
[9] Max Planck Institute for Intelligent Systems,undefined
[10] Swiss Light Source,undefined
[11] Paul Scherrer Institut,undefined
[12] ALBA Synchrotron Light Facility,undefined
[13] Laboratoire des Sciences des Procedés et des Matériaux,undefined
[14] CNRS,undefined
[15] Univ. Paris 13,undefined
[16] National Institute of Standards and Technology,undefined
[17] University of Colorado,undefined
[18] Univ. Grenoble Alpes,undefined
[19] CNRS,undefined
[20] Institut Néel,undefined
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摘要
Magnetic skyrmions are topological spin textures that hold great promise as nanoscale information carriers in non-volatile memory and logic devices. While room-temperature magnetic skyrmions and their current-induced motion were recently demonstrated, the stray field resulting from their finite magnetisation and their topological charge limit their minimum size and reliable motion. Antiferromagnetic skyrmions allow to lift these limitations owing to their vanishing magnetisation and net zero topological charge, promising ultra-small and ultra-fast skyrmions. Here, we report on the observation of isolated skyrmions in compensated synthetic antiferromagnets at zero field and room temperature using X-ray magnetic microscopy. Micromagnetic simulations and an analytical model confirm the chiral antiferromagnetic nature of these skyrmions and allow the identification of the physical mechanisms controlling their size and stability. Finally, we demonstrate the nucleation of synthetic antiferromagnetic skyrmions via local current injection and ultra-fast laser excitation.
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