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通过感应热等离子体工艺制备的具有亚稳TbCu7型结构的纳米级各向异性Sm-Fe-N颗粒。

Nanosized Anisotropic Sm-Fe-N Particles with Metastable TbCu7-Type Structures Prepared by an Induction Thermal Plasma Process.

作者信息

Hirayama Yusuke, Wang Jian, Shigeta Masaya, Tsurumi Shunsuke, Sugimoto Makoto, Liu Zheng, Takagi Kenta, Ozaki Kimihiro

机构信息

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.

出版信息

Nanomaterials (Basel). 2025 Jul 5;15(13):1045. doi: 10.3390/nano15131045.

Abstract

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.

摘要

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。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8820/12251102/8a1a966aa870/nanomaterials-15-01045-g001.jpg

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