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Search for "magnetic vortex" in Full Text gives 4 result(s) in Beilstein Journal of Nanotechnology.

TEM sample preparation of lithographically patterned permalloy nanostructures on silicon nitride membranes

  • Joshua Williams,
  • Michael I. Faley,
  • Joseph Vimal Vas,
  • Peng-Han Lu and
  • Rafal E. Dunin-Borkowski

Beilstein J. Nanotechnol. 2024, 15, 1–12, doi:10.3762/bjnano.15.1

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  • lithographically patterned nanostructures to be examined using TEM. The results of the fabrication methods mentioned above were examined using SEM. This is important because the structural information (disk dimensions and deformation from fences) later correlates to the magnetic properties. A magnetic vortex
  •  12) depending on the sample tilt. We kept the tilt angle constant and applied different intensities of the objective-lens field. The magnetic states of the sample were characterized under each condition using LTEM and off-axis electron holography. Lorentz TEM The dynamics of the magnetic vortex with
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Published 02 Jan 2024

Magnetic properties of optimized cobalt nanospheres grown by focused electron beam induced deposition (FEBID) on cantilever tips

  • Soraya Sangiao,
  • César Magén,
  • Darius Mofakhami,
  • Grégoire de Loubens and
  • José María De Teresa

Beilstein J. Nanotechnol. 2017, 8, 2106–2115, doi:10.3762/bjnano.8.210

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  • show the formation of a magnetic vortex state in remanence, which nicely agrees with magnetic hysteresis loops performed by local magnetometry showing negligible remanent magnetization. As investigated by local magnetometry, optimal behavior for high-resolution MRFM has been found for cobalt
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Published 09 Oct 2017

Magnetic switching of nanoscale antidot lattices

  • Ulf Wiedwald,
  • Joachim Gräfe,
  • Kristof M. Lebecki,
  • Maxim Skripnik,
  • Felix Haering,
  • Gisela Schütz,
  • Paul Ziemann,
  • Eberhard Goering and
  • Ulrich Nowak

Beilstein J. Nanotechnol. 2016, 7, 733–750, doi:10.3762/bjnano.7.65

Graphical Abstract
  • artificial pinning sites for domain walls, blocking or even guiding their movement in specific directions during magnetic reversal [13][14]. Moreover, magnetic antidot lattices eventually lead to the formation of magnetic vortex structures [15]. In the extreme, the choice of large antidot diameters d > 0.75a
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Published 24 May 2016

Manipulation of magnetic vortex parameters in disk-on-disk nanostructures with various geometry

  • Maxim E. Stebliy,
  • Alexander G. Kolesnikov,
  • Alexey V. Ognev,
  • Alexander S. Samardak and
  • Ludmila A. Chebotkevich

Beilstein J. Nanotechnol. 2015, 6, 697–703, doi:10.3762/bjnano.6.70

Graphical Abstract
  • applied during measurements. It is found that manipulation of the magnetic vortex chirality and the trajectory of the vortex core in the big disk is only possible in asymmetric nanostructures. Experimentally studied peculiarities of a motion path of the vortex core and vortex parameters by the magneto
  • -optical Kerr effect (MOKE) magnetometer are supported by the magnetic force microscopy imaging and micromagnetic simulations. Keywords: hysteresis; magnetic vortex; magnetization reversal; micromagnetic structure; Introduction Magnetic nanostructures have a wide range of unique properties that
  • topic not only for fundamental physics, but mostly for high-tech sectors of economics including electronics, data storage and sensor technologies. Nanomagnets in the shape of disks attract huge scientific attention, because of the possibility to realize the four stable magnetic vortex states with
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Published 10 Mar 2015
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