Domain configuration and magnetization switching in arrays of permalloy nanostripes

The proximity effect in the collective behavior of arrays of magnetic nanostripes is currently a subject of intensive research. The imperative of reducing the size and distances between elements in order to achieve higher storage capacity, faster access to the information as well as low energy consu...

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Detalles Bibliográficos
Autores: Iglesias Freire, O., Jaafar, M., Pérez García, Lucas, De Abril Torralba, Óscar, Vázquez, M., Asenjo, A.
Tipo de recurso: artículo
Fecha de publicación:2014
País:España
Institución:Universidad Complutense de Madrid (UCM)
Repositorio:Docta Complutense
Idioma:inglés
OAI Identifier:oai:docta.ucm.es:20.500.14352/35541
Acceso en línea:https://hdl.handle.net/20.500.14352/35541
Access Level:acceso abierto
Palabra clave:538.9
Force microscopy
Giant magnetoresistance
Cobalt nanowires
Junctions
Behavior
Física de materiales
Física del estado sólido
2211 Física del Estado Sólido
Descripción
Sumario:The proximity effect in the collective behavior of arrays of magnetic nanostripes is currently a subject of intensive research. The imperative of reducing the size and distances between elements in order to achieve higher storage capacity, faster access to the information as well as low energy consumption, brings consequences about the isolated behavior of the elements and devices. Parallel to each other permalloy nanostripes with high aspect ratio have been prepared by the nanolithography technique. The evolution of the closure domains and the magnetization direction in individual nanostructures has been imaged under applied magnetic fields using Variable Field Magnetic Force Microscopy. Moreover, the magnetostatic interactions between neighboring elements and the proximity effects in arrays of such nanostructures have been quantitatively analyzed by Magnetic Force Microscopy and micromagnetic simulations. The agreement between simulations and the experimental results allows us to conclude the relevance of those interactions depending on the geometry characteristics. In particular, results suggest that the magnetostatic coupling between adjacent nanostripes vanishes for separation distances higher than 500 nm.