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Size-dependence and high temperature stability of radial vortex magnetic textures imprinted by superconductor stray fields

Authors :
Sánchez Manzano, David
Orfila Rodríguez, Gloria
Sander, Anke
Marcano, Lourdes
Gallego Toledo, Fernando
Mawass, Mohamad-Assaad
Grilli, Francesco
Arora, Ashima
Peralta, Andrea
Cuéllar Jiménez, Fabian Andrés
Fernández Roldán, Jose A.
Reyren, NIcolas
Kronast, Florian
León Yebra, Carlos
Rivera Calzada, Alberto Carlos
Villegas, Javier E
Santamaría Sánchez-Barriga, Jacobo
Valencia, Sergio
Sánchez Manzano, David
Orfila Rodríguez, Gloria
Sander, Anke
Marcano, Lourdes
Gallego Toledo, Fernando
Mawass, Mohamad-Assaad
Grilli, Francesco
Arora, Ashima
Peralta, Andrea
Cuéllar Jiménez, Fabian Andrés
Fernández Roldán, Jose A.
Reyren, NIcolas
Kronast, Florian
León Yebra, Carlos
Rivera Calzada, Alberto Carlos
Villegas, Javier E
Santamaría Sánchez-Barriga, Jacobo
Valencia, Sergio
Publication Year :
2024

Abstract

Swirling spin textures, including topologically nontrivial states, such as skyrmions, chiral domain walls, and magnetic vortices, have garnered significant attention within the scientific community due to their appeal from both fundamental and applied points of view. However, their creation, controlled manipulation, and stability are typically constrained to certain systems with specific crystallographic symmetries, bulk or interface interactions, and/or a precise stacking sequence of materials. Recently, a new approach has shown potential for the imprint of magnetic radial vortices in soft ferromagnetic compounds making use of the stray field of YBa2Cu3O7-delta superconducting microstructures in ferromagnet/superconductor (FM/SC) hybrids at temperatures below the superconducting transition temperature (T-C). Here, we explore the lower size limit for the imprint of magnetic radial vortices in square and disc shaped structures as well as the persistence of these spin textures above T-C, with magnetic domains retaining partial memory. Structures with circular geometry and with FM patterned to smaller radius than the superconductor island facilitate the imprinting of magnetic radial vortices and improve their stability above T-C, in contrast to square structures where the presence of magnetic domains increases the dipolar energy. Micromagnetic modeling coupled with a SC field model reveals that the stabilization mechanism above T-C is mediated by microstructural defects. Superconducting control of swirling spin textures, and their stabilization above the superconducting transition temperature by means of defect engineering holds promising prospects for shaping superconducting spintronics based on magnetic textures<br />Helmholtz Zentrum Berlin fur Materialen und Energie<br />European Commission<br />MInisterio de Economía y Competitividad (España)<br />Agence Nationale de la Recherche (France)<br />Alexander von Humboldt Foundation<br />Depto. de Física de Materiales<br />Fac. de Ciencias Físicas<br />TRUE<br />pub<br />Pagado por el autor

Details

Database :
OAIster
Notes :
application/pdf, 1944-8244, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1450549236
Document Type :
Electronic Resource