Hirayama Yusuke, Wang Jian, Shigeta Masaya, Tsurumi Shunsuke, Sugimoto Makoto, Liu Zheng, Takagi Kenta, Ozaki Kimihiro
National Institute of Advanced Industrial Science and Technology, 4-205, Sakurazaka, Moriyama, Nagoya 463-8560, Japan.
Department of Mechanical Systems Engineering, Graduate School of Engineering, Tohoku University, 6-6-01, Aramaki Aza Aoba, Aoba, Sendai 980-8579, Japan.
Nanomaterials (Basel). 2025 Jul 5;15(13):1045. doi: 10.3390/nano15131045.
TbCu-type Sm-based compounds can be produced in bulk and potentially surpass NdFeB as permanent magnets. However, as the processes to prepare anisotropic magnetic particles are limited, the full potential of TbCu-type Sm-based compounds cannot be exploited. In this study, metastable TbCu-type phases of anisotropic Sm-Fe-N ultrafine particles were prepared using the low-oxygen induction thermal plasma (LO-ITP) process. X-ray diffraction analysis revealed that the obtained TbCu-type Sm-Fe alloy nanoparticles exhibited a c/a value of 0.8419, with an Fe/Sm atomic ratio of ~8.5. After nitrogenation, the obtained Sm-Fe-N nanoparticles were aligned under an external magnetic field, indicating that each alloy particle exhibited anisotropic magnetic properties. A substantially high degree of alignment of 91 ± 2% was achieved, quantitatively estimated via pole figure measurements. Numerical analysis following Sm-Fe nanoparticle formation showed that, compared with Fe condensation, Sm condensation persisted even at low temperatures, because of a significant difference in vapor pressure between Sm and Fe. Though this led to a relatively large compositional distribution of Sm within particles with a Sm concentration of 9-12 at%, the preparation of single-phase TbCu-type Sm-Fe-N particles could be facilitated by optimizing several parameters during the LO-ITP process.
TbCu型Sm基化合物可以大量制备,并且有可能超越钕铁硼成为永磁体。然而,由于制备各向异性磁性颗粒的工艺有限,TbCu型Sm基化合物的全部潜力无法得到充分发挥。在本研究中,利用低氧感应热等离子体(LO-ITP)工艺制备了各向异性Sm-Fe-N超细颗粒的亚稳TbCu型相。X射线衍射分析表明,所获得的TbCu型Sm-Fe合金纳米颗粒的c/a值为0.8419,Fe/Sm原子比约为8.5。氮化后,所获得的Sm-Fe-N纳米颗粒在外加磁场下取向排列,表明每个合金颗粒都表现出各向异性磁性。通过极图测量定量估计,实现了91±2%的高度取向排列。Sm-Fe纳米颗粒形成后的数值分析表明,与Fe凝聚相比,由于Sm和Fe之间蒸气压的显著差异,即使在低温下Sm凝聚仍会持续。尽管这导致Sm在颗粒内的成分分布相对较大,Sm浓度为9-12原子%,但通过优化LO-ITP工艺中的几个参数,可以促进单相TbCu型Sm-Fe-N颗粒的制备。