Magnetic properties of Fe$_5$SiB$_2$ and its alloys with P, S, and Co
Miros{\l}aw Werwi\'nski, Sofia Kontos, Klas Gunnarsson, Peter, Svedlindh, Johan Cedervall, Viktor H\"oglin, Martin Sahlberg, Alexander, Edstr\"om, Olle Eriksson, and J\'an Rusz

TL;DR
This study combines experimental and theoretical approaches to investigate the magnetic properties of Fe$_5$SiB$_2$ and its alloys, revealing how alloying influences magnetic moments and anisotropy, and proposing new compositions for rare-earth free permanent magnets.
Contribution
It provides new insights into the magnetic behavior of Fe$_5$SiB$_2$ alloys and identifies (Fe$_{0.7}$Co$_{0.3}$)$_5$SiB$_2$ as a promising rare-earth free permanent magnet candidate.
Findings
Fe$_5$SiB$_2$ has a saturation magnetization of 0.92 MA/m at 300 K.
Magnetocrystalline anisotropy energy varies with alloy composition, reaching up to 1.16 MJ/m$^3$ in Co-alloyed systems.
Alloying with Co increases MAE and reduces magnetic moment, favoring permanent magnet applications.
Abstract
FeSiB has been synthesized and magnetic measurements have been carried out, revealing that M = 0.92 MA/m at T = 300 K. The M vs T curve shows a broad peak around T = 160 K. The anisotropy constant, K, estimated at T = 300 K, is 0.25 MJ/m. Theoretical analysis of FeSiB system has been carried out and extended to the full range of FeSiPB, FePSB, and (FeCo)SiB compositions. The electronic band structures have been calculated using the Full-Potential Local-Orbital Minimum-Basis Scheme (FPLO-14). The calculated total magnetic moments are 9.20, 9.15, 9.59 and 2.42 per formula units of FeSiB, FePB, FeSB, and CoSiB, respectively. In agreement with experiment, magnetocrystalline anisotropy energies (MAE's) calculated for T = 0 K changes from a negative…
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