Data-driven design of a new class of rare-earth free permanent magnets
Alena Vishina, Daniel Hedlund, Vitalii Shtender, Erna K. Delczeg-Czirjak, Simon R. Larsen, Olga Yu. Vekilova, Shuo Huang, Levente Vitos, Peter Svedlindh, Martin Sahlberg, Olle Eriksson, Heike C. Herper

TL;DR
This paper introduces a new class of rare-earth-free permanent magnets based on Co3Mn2X compounds, discovered through a combination of high-throughput theoretical screening and experimental validation, showing promising magnetic properties.
Contribution
It presents the first combined theoretical and experimental study of Co3Mn2X compounds as rare-earth-free permanent magnets, highlighting their potential and suggesting further material improvements.
Findings
Predicted high saturation magnetization of 1.71 T from ab-initio calculations.
Experimental saturation polarization of 0.86 T at 10 K.
Curie temperature of 359 K indicating practical usability.
Abstract
A new class of rare-earth-free permanent magnets is proposed. The parent compound of this class is CoMnGe, and its discovery is the result of first principles theory combined with experimental synthesis and characterisation. The theory is based on a high-throughput/data-mining search among materials listed in the ICSD database. From ab-initio theory of the defect free material it is predicted that the saturation magnetization is 1.71 T, the uniaxial magnetocrystalline anisotropy is 1.44 MJ/m, and the Curie temperature is 700 K. CoMnGe samples were then synthesized and characterised with respect to structure and magnetism. The crystal structure was found to be the MgZn-type, with partial disorder of Co and Ge on the crystallographic lattice sites. From magnetization measurements a saturation polarization of 0.86 T at 10 K was detected, together with a uniaxial…
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