Suppressing laves phase and overcoming magnetic properties tradeoff in nanostructured (Ce,La,Y)–Fe–B alloys via Ge substitution

Author:

Zhou Bang1ORCID,Li Wei2,Wen Lin3ORCID,Xu Chengyuan3,Liao Xuefeng4ORCID,Wei Jinbo3,Pan Yu5ORCID,Liu Xiaolian3ORCID,Fu Song3ORCID,Zhao Lizhong3ORCID,Yu Hongya1ORCID,Zhong Xichun1ORCID,Zhang Xuefeng3ORCID,Liu Zhongwu1ORCID

Affiliation:

1. School of Materials Science and Engineering, South China University of Technology 1 , Guangzhou 510640, China

2. School of Materials Science and Engineering, Nanchang Hangkong University 2 , Nanchang 330063, China

3. Institute of Advanced Magnetic Materials, College of Materials and Environmental Engineering, Hangzhou Dianzi University 3 , Hangzhou 310012, China

4. Guangdong Provincial Key Laboratory of Rare Earth Development and Application, Institute of Resources Utilization and Rare Earth Development, Guangdong Academy of Sciences 4 , Guangzhou 510650, China

5. School of Chemistry and Materials Sciences, University of Science and Technology of China 5 , Hefei 230026, China

Abstract

Developing permanent magnets based on full high abundance rare-earth (RE) elements of Ce, La, and Y offers tremendous potential for the balanced utilization of RE resources, but the magnetic properties of these magnets are restricted due to the magnetic dilution caused by the existence of the paramagnetic REFe2 laves phase. Herein, the non-RE element Ge with high efficiency was introduced to enhance the magnetic performance of Ce-, La-, and Y-based RE–Fe–B nanocrystalline alloys, and the highest maximum energy product [(BH)max] of 65.6 kJ/m3 and an enhanced coercivity (Hcj) of 346 kA/m were achieved in the [(Ce0.8La0.2)0.5Y0.5]16Fe77.5B6Ge0.5 alloy. This improvement is attributed to the increased content of the hard magnetic RE2Fe14B phase with refined grain size, which is further confirmed by micromagnetic simulation. First-principles calculations and a microstructure analysis reveal that the laves phase is effectively suppressed by Ge addition due to the formation of the Ce5Ge3 phase with the lowest formation energy. This work clarifies the positive role of Ge in simultaneously enhancing the Hci and (BH)max of nanostructured (Ce,La,Y)–Fe–B alloys.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

National Key Research and Development Program of China

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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