journal article Jun 01, 2026

Angular dependence of stress-induced spin-wave dynamics in antivortices stabilized in square FeGa nanodots

View at Publisher Save 10.1016/j.jmmm.2026.174091
Topics

No keywords indexed for this article. Browse by subject →

References
43
[1]
Faurie "Prospects toward flexible magnonic systems" J. Appl. Phys. (2021) 10.1063/5.0055976
[2]
Khelif "Stress gradient effects on magnetic eigenmodes in ferromagnetic nanobars: a micromagnetic approach to magnetoelastic coupling" J. Phys. D: Appl. Phys. (2025) 10.1088/1361-6463/ae1e0b
[3]
Tejo "Dynamic susceptibility of skyrmion clusters in Co/Pt nanodots" Appl. Phys. Lett. (2020) 10.1063/5.0023613
[4]
Saavedra "Magnonic key based on skyrmion clusters" Sci. Rep. (2021) 10.1038/s41598-021-02285-0
[5]
Tejo "Oscillations of skyrmion clusters in Co/Pt multilayer nanodots" Sci. Rep. (2020) 10.1038/s41598-020-73458-6
[6]
Yao "Electrically driven reversible magnetic rotation in nanoscale multiferroic heterostructures" ACS Nano (2018) 10.1021/acsnano.8b01936
[7]
Hu "Strain-mediated voltage-controlled switching of magnetic skyrmions in nanostructures" Npj Comput. Mater. (2018) 10.1038/s41524-018-0119-2
[8]
Bandyopadhyay "Magnetic straintronics: Manipulating the magnetization of magnetostrictive nanomagnets with strain for energy-efficient applications" Appl. Phys. Rev. (2021) 10.1063/5.0062993
[9]
Bandyopadhyay "Perspective: There is plenty of room for magnetic straintronics in the analog domain" Npj Spintron. (2024) 10.1038/s44306-024-00018-3
[10]
Zighem "A review on nanostructured thin films on flexible substrates: links between strains and magnetic properties" J. Phys.: Condens. Matter. (2021)
[11]
Sapozhnikov "Zigzag domains caused by strain-induced anisotropy of the Dzyaloshinskii-Moriya interaction" Phys. Rev. B (2022) 10.1103/physrevb.105.024405
[12]
Udalov "Electric field manipulation of the dzyaloshinskii–moriya interaction in hybrid multiferroic structures" IEEE Trans. Magn. (2024) 10.1109/tmag.2024.3453591
[13]
Gusev "Manipulation of the dzyaloshinskii–moriya interaction in Co/Pt multilayers with strain" Phys. Rev. Lett. (2020) 10.1103/physrevlett.124.157202
[14]
Dai "Stress tunable dynamic susceptibility of a magnetic vortex in a flexible Fe81Ga19 nanoring" J. Appl. Phys. (2022) 10.1063/5.0097753
[15]
Peng "Stress tunable dynamic susceptibility of stripe domains in flexible FeGa films" AIP Adv. (2025) 10.1063/5.0262732
[16]
Rao "Stress tunable spin dynamics of a magnetic vortex under resonant magnetic fields" AIP Adv. (2025) 10.1063/5.0246355
[17]
Dai "Stress-controlled dynamic susceptibility in FeGa stripes" J. Appl. Phys. (2018) 10.1063/1.5030382
[18]
Saavedra "Stress-tunable spin-wave dynamics in superellipse-shaped fega nanostructures" Appl. Phys. Lett. (2025) 10.1063/5.0278169
[19]
Vigo-Cotrina "Stress-tuned spin wave modes in magnetic vortex nanoellipses for flexible magnonic systems" Phys. B (2026) 10.1016/j.physb.2025.418113
[20]
Bublikov "Vortex gyrotropic mode in curved nanodots" J. Magn. Magn. Mater. (2021) 10.1016/j.jmmm.2021.168105
[21]
Vetrova "Investigation of self-nucleated skyrmion states in the ferromagnetic/nonmagnetic multilayer dot" Appl. Phys. Lett. (2021) 10.1063/5.0045835
[22]
Zelent "Skyrmion formation in nanodisks using magnetic force microscopy tip" Nanomaterials (2021) 10.3390/nano11102627
[23]
Tejo "Spin wave modes of antivortices hosted in square ultrathin nanodots" Chinese J. Phys. (2025) 10.1016/j.cjph.2025.11.001
[24]
Tejo "Angular-selective spin wave modes of magnetic antivortices stabilized by anisotropic Dzyaloshinskii–Moriya interactions" J. Magn. Magn. Mater. (2025) 10.1016/j.jmmm.2025.173448
[25]
Hu "Stabilization and dynamics of magnetic antivortices in a nanodisk with anisotropic Dzyaloshinskii-Moriya interaction" Phys. Rev. B (2024) 10.1103/physrevb.110.014437
[26]
Martyshkin "Magnonic interconnections: Spin-wave propagation across two-dimensional and three-dimensional junctions between yttrium iron garnet magnonic stripes" Phys. Rev. Appl. (2022) 10.1103/physrevapplied.18.064093
[27]
The design and verification of MuMax3

Arne Vansteenkiste, Jonathan Leliaert, Mykola Dvornik et al.

AIP Advances 2014 10.1063/1.4899186
[28]
Tutorial: Simulating modern magnetic material systems in mumax3

Jonas J. Joos, Pedram Bassirian, Pieter Gypens et al.

Journal of Applied Physics 2023 10.1063/5.0160988
[29]
Roy "In-plane anisotropy control of the magnetic vortex gyrotropic mode" Appl. Phys. Lett. (2013) 10.1063/1.4802976
[30]
Finizio "Unexpected field-induced dynamics in magnetostrictive microstructured elements under isotropic strain" J. Phys.: Condens. Matter. (2018)
[31]
Yu "Strain-modulated magnetization precession in skyrmion-based spin transfer nano-oscillator" Appl. Phys. Lett. (2021) 10.1063/5.0043537
[32]
Dai "Mechanically tunable magnetic properties of Fe81Ga19 films grown on flexible substrates" Appl. Phys. Lett. (2012) 10.1063/1.3696887
[33]
Zhang "Effect of buffer layer and external stress on magnetic properties of flexible FeGa films" J. Appl. Phys. (2013) 10.1063/1.4793602
[34]
Saavedra "Symmetry breaking-induced resonance dynamics in Bloch point nanospheres: Unveiling magnetic volume effects and geometric parameters for advanced applications in magnetic sensing and spintronics" ACS Appl. Mater. & Interfaces (2024) 10.1021/acsami.4c01963
[35]
Fullerton "Controlled evolution of three-dimensional magnetic states in strongly coupled cylindrical nanowire pairs" Nanotechnology (2023) 10.1088/1361-6528/aca9d6
[36]
Lendinez "Nonlinear multi-magnon scattering in artificial spin ice" Nat. Commun. (2023) 10.1038/s41467-023-38992-7
[37]
Noginova "Ferromagnetic resonance in permalloy metasurfaces" Appl. Magn. Reson. (2021) 10.1007/s00723-021-01347-w
[38]
Dai "Strong coupling between magnons confined in a single magnonic cavity" J. Appl. Phys. (2020) 10.1063/5.0005011
[39]
Dobrovolskiy "Spin-wave spectroscopy of individual ferromagnetic nanodisks" Nanoscale (2020) 10.1039/d0nr07015g
[40]
Biswas "Experimental demonstration of complete 180°reversal of magnetization in isolated co nanomagnets on a PMN–PT substrate with voltage generated strain" Nano Lett. (2017) 10.1021/acs.nanolett.7b00439
[41]
Dai "Controllable strain-induced uniaxial anisotropy of Fe81Ga19 films deposited on flexible bowed-substrates" J. Appl. Phys. (2013) 10.1063/1.4829670
[42]
Meisenheimer "Engineering new limits to magnetostriction through metastability in iron-gallium alloys" Nat. Commun. (2021) 10.1038/s41467-021-22793-x
[43]
Li "Modulation of the dzyaloshinskii–moriya interaction in Pt/Co/pt with electric field induced strain" Appl. Phys. Lett. (2025) 10.1063/5.0258337
Metrics
0
Citations
43
References
Details
Published
Jun 01, 2026
Vol/Issue
648
Pages
174091
License
View
Funding
Agencia Nacional de Investigación y Desarrollo
Fondo Nacional de Desarrollo Cientìfico y Tecnológico Award: 1240985
Departamento de Investigaciones Científicas y Tecnológicas, Universidad de Santiago de Chile
Ministry of Higher Education, Research and Innovation
Universidad Privada del Norte
Cite This Article
Eduardo Saavedra, Helmunt Vigo-Cotrina, Mohammed Al Bahri, et al. (2026). Angular dependence of stress-induced spin-wave dynamics in antivortices stabilized in square FeGa nanodots. Journal of Magnetism and Magnetic Materials, 648, 174091. https://doi.org/10.1016/j.jmmm.2026.174091
Related

You May Also Like

Current-driven excitation of magnetic multilayers

J.C. Slonczewski · 1996

6,200 citations

Giant magnetic tunneling effect in Fe/Al2O3/Fe junction

T. Miyazaki, N. Tezuka · 1995

1,822 citations

Magnetic nanoparticles

R.H Kodama · 1999

1,582 citations

Magnetocaloric effect and magnetic refrigeration

Vitalij K. Pecharsky, Karl A. Gschneidner Jr · 1999

1,508 citations