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Dynamical Torque in Co(x)Fe(3–x)O(4) Nanocube Thin Films Characterized by Femtosecond Magneto-Optics: A π-Shift Control of the Magnetization Precession

[Image: see text] For spintronic devices excited by a sudden magnetic or optical perturbation, the torque acting on the magnetization plays a key role in its precession and damping. However, the torque itself can be a dynamical quantity via the time-dependent anisotropies of the system. A challengin...

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Autores principales: Vomir, Mircea, Turnbull, Robin, Birced, Ipek, Parreira, Pedro, MacLaren, Donald A., Lee, Stephen L., André, Pascal, Bigot, Jean-Yves
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2016
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4981894/
https://www.ncbi.nlm.nih.gov/pubmed/27398653
http://dx.doi.org/10.1021/acs.nanolett.6b02618
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author Vomir, Mircea
Turnbull, Robin
Birced, Ipek
Parreira, Pedro
MacLaren, Donald A.
Lee, Stephen L.
André, Pascal
Bigot, Jean-Yves
author_facet Vomir, Mircea
Turnbull, Robin
Birced, Ipek
Parreira, Pedro
MacLaren, Donald A.
Lee, Stephen L.
André, Pascal
Bigot, Jean-Yves
author_sort Vomir, Mircea
collection PubMed
description [Image: see text] For spintronic devices excited by a sudden magnetic or optical perturbation, the torque acting on the magnetization plays a key role in its precession and damping. However, the torque itself can be a dynamical quantity via the time-dependent anisotropies of the system. A challenging problem for applications is then to disentangle the relative importance of various sources of anisotropies in the dynamical torque, such as the dipolar field, the crystal structure or the shape of the particular interacting magnetic nanostructures. Here, we take advantage of a range of colloidal cobalt ferrite nanocubes assembled in 2D thin films under controlled magnetic fields to demonstrate that the phase, ϕ(Prec), of the precession carries a strong signature of the dynamical anisotropies. Performing femtosecond magneto-optics, we show that ϕ(Prec) displays a π-shift for a particular angle θ(H) of an external static magnetic field, H. θ(H) is controlled with the cobalt concentration, the laser intensity, as well as the interparticle interactions. Importantly, it is shown that the shape anisotropy, which strongly departs from those of equivalent bulk thin films or individual noninteracting nanoparticles, reveals the essential role played by the interparticle collective effects. This work shows the reliability of a noninvasive optical approach to characterize the dynamical torque in high density magnetic recording media made of organized and interacting nanoparticles.
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spelling pubmed-49818942016-08-17 Dynamical Torque in Co(x)Fe(3–x)O(4) Nanocube Thin Films Characterized by Femtosecond Magneto-Optics: A π-Shift Control of the Magnetization Precession Vomir, Mircea Turnbull, Robin Birced, Ipek Parreira, Pedro MacLaren, Donald A. Lee, Stephen L. André, Pascal Bigot, Jean-Yves Nano Lett [Image: see text] For spintronic devices excited by a sudden magnetic or optical perturbation, the torque acting on the magnetization plays a key role in its precession and damping. However, the torque itself can be a dynamical quantity via the time-dependent anisotropies of the system. A challenging problem for applications is then to disentangle the relative importance of various sources of anisotropies in the dynamical torque, such as the dipolar field, the crystal structure or the shape of the particular interacting magnetic nanostructures. Here, we take advantage of a range of colloidal cobalt ferrite nanocubes assembled in 2D thin films under controlled magnetic fields to demonstrate that the phase, ϕ(Prec), of the precession carries a strong signature of the dynamical anisotropies. Performing femtosecond magneto-optics, we show that ϕ(Prec) displays a π-shift for a particular angle θ(H) of an external static magnetic field, H. θ(H) is controlled with the cobalt concentration, the laser intensity, as well as the interparticle interactions. Importantly, it is shown that the shape anisotropy, which strongly departs from those of equivalent bulk thin films or individual noninteracting nanoparticles, reveals the essential role played by the interparticle collective effects. This work shows the reliability of a noninvasive optical approach to characterize the dynamical torque in high density magnetic recording media made of organized and interacting nanoparticles. American Chemical Society 2016-07-11 2016-08-10 /pmc/articles/PMC4981894/ /pubmed/27398653 http://dx.doi.org/10.1021/acs.nanolett.6b02618 Text en Copyright © 2016 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Vomir, Mircea
Turnbull, Robin
Birced, Ipek
Parreira, Pedro
MacLaren, Donald A.
Lee, Stephen L.
André, Pascal
Bigot, Jean-Yves
Dynamical Torque in Co(x)Fe(3–x)O(4) Nanocube Thin Films Characterized by Femtosecond Magneto-Optics: A π-Shift Control of the Magnetization Precession
title Dynamical Torque in Co(x)Fe(3–x)O(4) Nanocube Thin Films Characterized by Femtosecond Magneto-Optics: A π-Shift Control of the Magnetization Precession
title_full Dynamical Torque in Co(x)Fe(3–x)O(4) Nanocube Thin Films Characterized by Femtosecond Magneto-Optics: A π-Shift Control of the Magnetization Precession
title_fullStr Dynamical Torque in Co(x)Fe(3–x)O(4) Nanocube Thin Films Characterized by Femtosecond Magneto-Optics: A π-Shift Control of the Magnetization Precession
title_full_unstemmed Dynamical Torque in Co(x)Fe(3–x)O(4) Nanocube Thin Films Characterized by Femtosecond Magneto-Optics: A π-Shift Control of the Magnetization Precession
title_short Dynamical Torque in Co(x)Fe(3–x)O(4) Nanocube Thin Films Characterized by Femtosecond Magneto-Optics: A π-Shift Control of the Magnetization Precession
title_sort dynamical torque in co(x)fe(3–x)o(4) nanocube thin films characterized by femtosecond magneto-optics: a π-shift control of the magnetization precession
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4981894/
https://www.ncbi.nlm.nih.gov/pubmed/27398653
http://dx.doi.org/10.1021/acs.nanolett.6b02618
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