Bulletin of the American Physical Society
2024 APS March Meeting
Monday–Friday, March 4–8, 2024; Minneapolis & Virtual
Session PP05: V: General Magnetism II
11:30 AM–1:30 PM,
Thursday, March 7, 2024
Room: Virtual Room 05
Sponsoring
Unit:
GMAG
Chair: Christopher Mizzi, Los Alamos National Laboratory
Abstract: PP05.00001 : Towards the geometrical control of the energy landscape of domain walls in Complex 3D nanostructures
11:30 AM–12:06 PM
Presenter:
Sandra Ruiz Gomez
(Max Planck Institute for Chemical Physics of Solids)
Authors:
Sandra Ruiz Gomez
(Max Planck Institute for Chemical Physics of Solids)
Claas Abert
(Faculty of Physics, University of Vienna)
Pamela Morales Fernandez
(Max Planck Institute for Chemical Physics of Solids)
Claudia Fernandez Gonzalez
(Max Planck Institute for Chemical Physics of Solids)
Lukas Danesi
(Faculty of Physics, University of Vienna)
Dieter Suess
(Faculty of Physics, University of Vienna)
Michael Foerster
(ALBA Synchrotron Light Source, CELLS)
Miguel Angel Nino
(ALBA Synchrotron Light Source, CELLS)
Anna Mandziak
(SOLARIS Synchrotron light Sources)
Markus Koenig
(Max Planck Institute for Chemical Physics of Solids)
Sebastian Seifert
(Max Planck Institute for Chemical Physics of Solids)
Aurelio Hierro
(Depto. FĂsica, Universidad de Oviedo)
Amalio Fernandez Pacheco
(Institute of Applied Physics, TU Wien)
Claire Donnelly
(Max Planck Institute for Chemical Physics of Solids)
In this work, we demonstrate the capacity to engineer the energy landscape of Bloch point domain walls via the introduction of curvature in a 3D nanostructure. By a careful design of the geometry of the nanostructures, grown using focused electron beam induced deposition (FEBID) [7], we are able to stabilize Bloch point domain walls and introduce well defined pinning positions. To map the energy landscape of these domain walls, we employ soft X-ray magnetic microscopy and analyze XMCD-images after applying magnetic fields. This enables us to showcase our capability to control the strength of pinning by adjusting the curvature of the nanostructure. This insight into the control of the magnetic behaviour via complex geometries will help pave the way to the next generation of 3D spintronic devices.
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