Persistent Uncorrelated Magnetic Domains in Fe/Si Multilayers and their suppression by incorporating 11B4C
Anton Zubayer, Artur Glavic, Naureen Ghafoor, Yuqing Ge, Yasmine Sassa, Martin M{\aa}nsson, Andreas Suter, Thomas Prokscha, Zaher Salman, Wai-Tung Lee, Kristbj\"org Anna Th\'orarinsd\'ottir, Arnaud Le Febvrier, Per Eklund, Jens Birch, Fridrik Magnus, Sean Langridge

TL;DR
This paper studies magnetic domains in Fe/Si multilayers and how adding B4C suppresses these domains, enhancing magnetic responsiveness and reducing off-specular scattering for neutron optics applications.
Contribution
It demonstrates that incorporating B4C into Fe/Si multilayers suppresses magnetic domains and spin flip scattering, improving their magnetic controllability and suitability for neutron polarization optics.
Findings
Fe/Si multilayers exhibit uncorrelated magnetic domains causing off-specular scattering.
Adding B4C suppresses magnetic domains and reduces off-specular scattering.
B4C incorporation enhances magnetic responsiveness and simplifies magnetic manipulation.
Abstract
This study investigates magnetic domains in Fe/Si and Fe/Si + B4C multilayers using spin flip off-specular polarized neutron reflectometry. The results show that Fe/Si multilayers exhibit pronounced spin flip off-specular scattering originating from magnetic domains that are uncorrelated out of plane. With increasing external magnetic field the domains progressively coalesce and their magnetization rotates toward alignment with the applied field, approaching a homogeneous magnetic state at higher fields. In contrast, Fe/Si + B4C multilayers exhibit no detectable spin flip off-specular scattering already at low fields, indicating that the multilayer reaches magnetic saturation at significantly lower applied fields. The scattering patterns are interpreted using distorted wave Born approximation simulations in BornAgain, enabled by our added code for simulating magnetic domains and…
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