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Template-free generation and integration of functional 1D magnetic nanostructures

The direct integration of 1D magnetic nanostructures into electronic circuits is crucial for realizing their great potential as components in magnetic storage, logical devices, and spintronic applications. Here, we present a novel template-free technique for producing magnetic nanochains and nanowir...

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Autores principales: Sedrpooshan, Mehran, Bulbucan, Claudiu, Ternero, Pau, Maltoni, Pierfrancesco, Preger, Calle, Finizio, Simone, Watts, Benjamin, Peddis, Davide, Burke, Adam M., Messing, Maria E., Westerström, Rasmus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10667589/
https://www.ncbi.nlm.nih.gov/pubmed/37942933
http://dx.doi.org/10.1039/d3nr03878e
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author Sedrpooshan, Mehran
Bulbucan, Claudiu
Ternero, Pau
Maltoni, Pierfrancesco
Preger, Calle
Finizio, Simone
Watts, Benjamin
Peddis, Davide
Burke, Adam M.
Messing, Maria E.
Westerström, Rasmus
author_facet Sedrpooshan, Mehran
Bulbucan, Claudiu
Ternero, Pau
Maltoni, Pierfrancesco
Preger, Calle
Finizio, Simone
Watts, Benjamin
Peddis, Davide
Burke, Adam M.
Messing, Maria E.
Westerström, Rasmus
author_sort Sedrpooshan, Mehran
collection PubMed
description The direct integration of 1D magnetic nanostructures into electronic circuits is crucial for realizing their great potential as components in magnetic storage, logical devices, and spintronic applications. Here, we present a novel template-free technique for producing magnetic nanochains and nanowires using directed self-assembly of gas-phase-generated metallic nanoparticles. The 1D nanostructures can be self-assembled along most substrate surfaces and can be freely suspended over micrometer distances, allowing for direct incorporation into different device architectures. The latter is demonstrated by a one-step integration of nanochains onto a pre-patterned Si chip and the fabrication of devices exhibiting magnetoresistance. Moreover, fusing the nanochains into nanowires by post-annealing significantly enhances the magnetic properties, with a 35% increase in the coercivity. Using magnetometry, X-ray microscopy, and micromagnetic simulations, we demonstrate how variations in the orientation of the magnetocrystalline anisotropy and the presence of larger multi-domain particles along the nanochains play a key role in the domain formation and magnetization reversal. Furthermore, it is shown that the increased coercivity in the nanowires can be attributed to the formation of a uniform magnetocrystalline anisotropy along the wires and the onset of exchange interactions.
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spelling pubmed-106675892023-11-09 Template-free generation and integration of functional 1D magnetic nanostructures Sedrpooshan, Mehran Bulbucan, Claudiu Ternero, Pau Maltoni, Pierfrancesco Preger, Calle Finizio, Simone Watts, Benjamin Peddis, Davide Burke, Adam M. Messing, Maria E. Westerström, Rasmus Nanoscale Chemistry The direct integration of 1D magnetic nanostructures into electronic circuits is crucial for realizing their great potential as components in magnetic storage, logical devices, and spintronic applications. Here, we present a novel template-free technique for producing magnetic nanochains and nanowires using directed self-assembly of gas-phase-generated metallic nanoparticles. The 1D nanostructures can be self-assembled along most substrate surfaces and can be freely suspended over micrometer distances, allowing for direct incorporation into different device architectures. The latter is demonstrated by a one-step integration of nanochains onto a pre-patterned Si chip and the fabrication of devices exhibiting magnetoresistance. Moreover, fusing the nanochains into nanowires by post-annealing significantly enhances the magnetic properties, with a 35% increase in the coercivity. Using magnetometry, X-ray microscopy, and micromagnetic simulations, we demonstrate how variations in the orientation of the magnetocrystalline anisotropy and the presence of larger multi-domain particles along the nanochains play a key role in the domain formation and magnetization reversal. Furthermore, it is shown that the increased coercivity in the nanowires can be attributed to the formation of a uniform magnetocrystalline anisotropy along the wires and the onset of exchange interactions. The Royal Society of Chemistry 2023-11-09 /pmc/articles/PMC10667589/ /pubmed/37942933 http://dx.doi.org/10.1039/d3nr03878e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Sedrpooshan, Mehran
Bulbucan, Claudiu
Ternero, Pau
Maltoni, Pierfrancesco
Preger, Calle
Finizio, Simone
Watts, Benjamin
Peddis, Davide
Burke, Adam M.
Messing, Maria E.
Westerström, Rasmus
Template-free generation and integration of functional 1D magnetic nanostructures
title Template-free generation and integration of functional 1D magnetic nanostructures
title_full Template-free generation and integration of functional 1D magnetic nanostructures
title_fullStr Template-free generation and integration of functional 1D magnetic nanostructures
title_full_unstemmed Template-free generation and integration of functional 1D magnetic nanostructures
title_short Template-free generation and integration of functional 1D magnetic nanostructures
title_sort template-free generation and integration of functional 1d magnetic nanostructures
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10667589/
https://www.ncbi.nlm.nih.gov/pubmed/37942933
http://dx.doi.org/10.1039/d3nr03878e
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