Development of Mischmetal–Fe–Co–B Permanent Magnet Alloys via High-Throughput Methods
Author(s) -
Rakesh P. Chaudhary,
Kinjal Gandha,
Fanqiang Meng,
Emrah Simsek,
Ikenna C. Nlebedim,
Orlando Rios,
M. J. Kramer,
Ryan Ott
Publication year - 2020
Publication title -
acs combinatorial science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.928
H-Index - 81
eISSN - 2156-8952
pISSN - 2156-8944
DOI - 10.1021/acscombsci.9b00190
Subject(s) - mischmetal , coercivity , magnet , curie temperature , chemistry , analytical chemistry (journal) , characterization (materials science) , melt spinning , materials science , metallurgy , alloy , spinning , nanotechnology , composite material , ferromagnetism , chromatography , physics , quantum mechanics , condensed matter physics , hydrogen storage
Additive manufacturing synthesis using laser engineered net shaping (LENS) is utilized to rapidly print libraries of mischmetal (MM = La, Ce, Nd, and Pr) containing R 2 TM 14 B alloys (R = MM + separated Nd and TM = Fe and Co) enabling robust evaluation of physical properties over a wide composition range. High-throughput characterization of the magnetic and thermal properties are used to identify compositions for potential high-temperature, high-performance permanent magnets with reduced critical rare-earth elements. Improved Curie temperature ( T c ∼ 450 °C) is obtained with substitution of Fe by Co in pseudoternary R 2 TM 14 B alloys. Furthermore, a 4-fold decrease in the Nd content can be achieved through substitution with less critical Ce- and La-rich MM, while retaining high T c . Guided by the properties of the LENS printed samples, selected compositions with and without TiC additions are synthesized via melt-spinning techniques to produce nanostructured ribbons. The maximum room temperature coercivity ( H c ) and energy product ((BH) max ) without TiC are found to be 5.8 kOe, 8.5 MGOe, respectively, while TiC additions as a grain refiner gave H c and (BH) max of 4.9 kOe, 9.8 MGOe, respectively. Structural characterization of the melt-spun ribbons shows homogeneous grain refinement with TiC additions, which leads to an increase in the energy product.
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