Magnetic microstructure of nanocrystalline Fe-Nb-B alloys as seen by small-angle neutron and X-ray scattering
Venus Rai, Ivan Titov, Michael P. Adams, Kiyonori Suzuki, Joachim, Kohlbrecher, and Andreas Michels

TL;DR
This study uses small-angle neutron and X-ray scattering to analyze the magnetic microstructure of Fe-Nb-B nanocrystalline alloys, revealing insights into spin misalignment, magnetic anisotropy, and exchange interactions relevant for improving magnetic properties.
Contribution
The paper demonstrates the application of micromagnetic SANS theory to analyze magnetic microstructure, providing quantitative parameters and validating the theory for Fe-Nb-B alloys.
Findings
Magnetic scattering is dominated by spin misalignment at particle-matrix interfaces.
The magnetic scattering pattern shows a clover-leaf anisotropy consistent with micromagnetic theory.
Exchange-stiffness and anisotropy fields are quantified, with correlation lengths between 10-35 nm.
Abstract
We have investigated the magnetic microstructure of two-phase Fe-Nb-B~based Nanoperm alloys using unpolarized small-angle neutron scattering (SANS) and small-angle X-ray scattering (SAXS). Our SANS analysis reveals a significantly large magnetic scattering contribution due to spin misalignment, primarily originating from the substantial jump in the longitudinal magnetization at the interfaces between the particles and the matrix. The magnetic scattering exhibits an angular anisotropy that resembles a clover-leaf-type pattern, consistent with the predictions of micromagnetic SANS theory. Analysis of the one-dimensional SANS data yields values for the exchange-stiffness constant and the average anisotropy and magnetostatic fields. The micromagnetic correlation lengths for all three samples exhibit a similar field variation with sizes ranging between about 10-35 nm. We also find that the…
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Taxonomy
TopicsMagnetic Properties of Alloys · Microstructure and Mechanical Properties of Steels · Magnetic Properties and Applications
