4.6 Article

Coercivity Increase of the Recycled HDDR Nd-Fe-B Powders Doped with DyF3 and Processed via Spark Plasma Sintering & the Effect of Thermal Treatments

Journal

MATERIALS
Volume 12, Issue 9, Pages -

Publisher

MDPI
DOI: 10.3390/ma12091498

Keywords

rare earth permanent magnets; HDDR Nd2Fe14B; recycling; spark plasma sintering; coercivity; doping DyF3

Funding

  1. European Community [674973]
  2. Marie Curie Actions (MSCA) [674973] Funding Source: Marie Curie Actions (MSCA)

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The magnetic properties of the recycled hydrogenation disproportionation desorption recombination (HDDR) Nd-Fe-B powder, doped with a low weight fraction of DyF3 nanoparticles, were investigated. Spark plasma sintering (SPS) was used to consolidate the recycled Nd-Fe-B powder blends containing 1, 2, and 5 wt.% of DyF3 grounded powder. Different post-SPS sintering thermal treatment conditions (600, 750, and 900 degrees C), for a varying amount of time, were studied in view of optimizing the magnetic properties and developing characteristic core-shell microstructure in the HDDR powder. As received, recycled HDDR powder has coercivity (H-Ci) of 830 kA/m, and as optimally as SPS magnets reach 1160 kA/m, after the thermal treatment. With only 1-2 wt.% blended DyF3, the H-Ci peaked to 1407 kA/m with the thermal treatment at 750 degrees C for 1 h. The obtained H-Ci values of the blend magnet is similar to 69.5% higher than the starting recycled HDDR powder and 17.5% higher than the SPS processed magnet annealed at 750 degrees C for 1 h. Prolonging the thermal treatment time to 6 h and temperature conditions above 900 degrees C was detrimental to the magnetic properties. About similar to 2 wt.% DyF3 dopant was suitable to develop a uniform core-shell microstructure in the HDDR Nd-Fe-B powder. The Nd-rich phase in the HDDR powder has a slightly different and fluorine rich composition i.e., Nd-O-F-2 than in the one reported in sintered magnets (Nd-O-F). The composition of reaction zone-phases after the thermal treatment and Dy diffusion was DyF4, which is more abundant in 5 wt.% doped samples. Further doping above 2 wt.% DyF3 is ineffective in augmenting the coercivity of the recycled HDDR powder, due to the decomposition of the shell structure and formation of non-ferromagnetic rare earth-based complex intermetallic compounds. The DyF3 doping is a very effective single step route in a controlled coercivity improvement of the recycled HDDR Nd-Fe-B powder from the end of life magnetic products.

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