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Ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling

The quest to improve the density, speed and energy efficiency of magnetic memory storage has led to the exploration of new ways of optically manipulating magnetism at the ultrafast time scale, in particular in ferrimagnetic alloys. While all-optical magnetization switching is well-established on the...

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Autores principales: Mishra, Kshiti, Ciuciulkaite, Agne, Zapata-Herrera, Mario, Vavassori, Paolo, Kapaklis, Vassilios, Rasing, Theo, Dmitriev, Alexandre, Kimel, Alexey, Kirilyuk, Andrei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8638807/
https://www.ncbi.nlm.nih.gov/pubmed/34698755
http://dx.doi.org/10.1039/d1nr04308k
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author Mishra, Kshiti
Ciuciulkaite, Agne
Zapata-Herrera, Mario
Vavassori, Paolo
Kapaklis, Vassilios
Rasing, Theo
Dmitriev, Alexandre
Kimel, Alexey
Kirilyuk, Andrei
author_facet Mishra, Kshiti
Ciuciulkaite, Agne
Zapata-Herrera, Mario
Vavassori, Paolo
Kapaklis, Vassilios
Rasing, Theo
Dmitriev, Alexandre
Kimel, Alexey
Kirilyuk, Andrei
author_sort Mishra, Kshiti
collection PubMed
description The quest to improve the density, speed and energy efficiency of magnetic memory storage has led to the exploration of new ways of optically manipulating magnetism at the ultrafast time scale, in particular in ferrimagnetic alloys. While all-optical magnetization switching is well-established on the femtosecond timescale, lateral nanoscale confinement and thus the potential significant reduction of the size of the magnetic element remains an outstanding challenge. Here we employ resonant electromagnetic energy funneling through plasmon nanoantennas to influence the demagnetization dynamics of a ferrimagnetic TbCo alloy thin film. We demonstrate how Ag nanoring-shaped antennas under resonant optical femtosecond pumping reduce the overall demagnetization in the underlying films up to three times compared to non-resonant illumination. We attribute such a substantial reduction to the nanoscale confinement of the demagnetization process. This is qualitatively supported by the electromagnetic simulations that strongly evidence the resonant optical energy-funneling to the nanoscale from the nanoantennas into the ferrimagnetic film. This observation is an important step for reaching deterministic ultrafast all-optical magnetization switching at the nanoscale in such systems, opening a route to develop nanoscale ultrafast magneto-optics.
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spelling pubmed-86388072021-12-30 Ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling Mishra, Kshiti Ciuciulkaite, Agne Zapata-Herrera, Mario Vavassori, Paolo Kapaklis, Vassilios Rasing, Theo Dmitriev, Alexandre Kimel, Alexey Kirilyuk, Andrei Nanoscale Chemistry The quest to improve the density, speed and energy efficiency of magnetic memory storage has led to the exploration of new ways of optically manipulating magnetism at the ultrafast time scale, in particular in ferrimagnetic alloys. While all-optical magnetization switching is well-established on the femtosecond timescale, lateral nanoscale confinement and thus the potential significant reduction of the size of the magnetic element remains an outstanding challenge. Here we employ resonant electromagnetic energy funneling through plasmon nanoantennas to influence the demagnetization dynamics of a ferrimagnetic TbCo alloy thin film. We demonstrate how Ag nanoring-shaped antennas under resonant optical femtosecond pumping reduce the overall demagnetization in the underlying films up to three times compared to non-resonant illumination. We attribute such a substantial reduction to the nanoscale confinement of the demagnetization process. This is qualitatively supported by the electromagnetic simulations that strongly evidence the resonant optical energy-funneling to the nanoscale from the nanoantennas into the ferrimagnetic film. This observation is an important step for reaching deterministic ultrafast all-optical magnetization switching at the nanoscale in such systems, opening a route to develop nanoscale ultrafast magneto-optics. The Royal Society of Chemistry 2021-10-01 /pmc/articles/PMC8638807/ /pubmed/34698755 http://dx.doi.org/10.1039/d1nr04308k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Mishra, Kshiti
Ciuciulkaite, Agne
Zapata-Herrera, Mario
Vavassori, Paolo
Kapaklis, Vassilios
Rasing, Theo
Dmitriev, Alexandre
Kimel, Alexey
Kirilyuk, Andrei
Ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling
title Ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling
title_full Ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling
title_fullStr Ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling
title_full_unstemmed Ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling
title_short Ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling
title_sort ultrafast demagnetization in a ferrimagnet under electromagnetic field funneling
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8638807/
https://www.ncbi.nlm.nih.gov/pubmed/34698755
http://dx.doi.org/10.1039/d1nr04308k
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