J. Mater. Sci. Technol. ›› 2026, Vol. 252: 245-252.DOI: 10.1016/j.jmst.2025.07.020

• Research Article • Previous Articles     Next Articles

Enhancement of magnetic properties of Nb/Ga-doped (Nd,Pr)-(Fe,Co)-B alloys via synergistic effects of grain refinement and tuning intergranular phase

Xiaohua Tan*, Shiqi Zhang, Hui Xu*   

  1. Institute of Materials, School of Materials Science and Engineering, Shanghai University, Shanghai 200444, China
  • Received:2025-06-16 Revised:2025-07-10 Accepted:2025-07-13 Published:2026-05-01 Online:2026-05-06
  • Contact: * E-mail addresses: tanxiaohua123@shu.edu.cn (X. Tan), huixu8888@shu.edu.cn (H.Xu) .

Abstract: The growing demand in sustainable technology and clean energy applications highly require for developing high-performance Nd-Fe-B permanent magnets. The magnetic properties and microstructures of the Nd10.23Pr2.56Fe68.32Co13.08B5.81 (A0 alloy), Nd10.18Pr2.55Fe67.98Co13.01B5.78Nb0.50 (A-Nb0.5 alloy), and Nd10.18Pr2.55Fe67.98Co13.01B5.78Ga0.50 (A-Ga0.5 alloy) are investigated. We use the strategy of grain refinement and tuning intergranular phase (IP) to improve the magnetic properties by doping high melting point element (HMPE) Nb and low melting point element (LMPE) Ga. The average grain size of Nd2(Fe, Co)14B (2:14:1) in the A0 alloy is 52 ± 2 nm, and it is effectively reduced to 40 ± 3 and 32 ± 3 nm through Nb/Ga addition. The atom probe tomography (APT) is used to illustrate the effect of the IP on magnetic properties. Both ferromagnetic and non-ferromagnetic IPs are observed in the A0 alloy, while only ferromagnetic IP is shown in the A-Nb0.5 and A-Ga0.5 alloys. Moreover, the concentration of (Fe + Co) at ferromagnetic IP is increased through Nb/Ga addition. The synergistic effects of grain refinement and tuning intergranular phase lead to the improvement of the remanence (Br) and maximum energy product ((BH)max). In comparison to the A0 alloy, Br is increased to 0.85 T of the A-Nb0.5 alloy and 0.88 T of the A-Ga0.5 alloy. The (BH)max is improved by 8.8 % to 123 kJ/m3 for the A-Nb0.5 alloy and by 21.2 % to 137 kJ/m3 for the A-Ga0.5 alloy. Our findings provide an approach to develop high-performance rare-earth permanent magnets by grain refinement and adjusting the intergranular phase.

Key words: Rare earth permanent magnetic material, Magnetic property, Grain refinement, Intergranular phase, Atom probe tomography