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通过球磨工艺制备的具有增强矫顽力的各向异性SmFeV块体磁体。

Anisotropic SmFeV Bulk Magnets with Enhanced Coercivity via Ball Milling Process.

作者信息

Zhou Tian Hong, Zhang Baochao, Zheng Xing, Song Youngwoon, Si Pingzhan, Choi Chul-Jin, Cho Young-Rae, Park Jihoon

机构信息

Nano Materials Research Division, Korea Institute of Materials Science, Changwon 51508, Republic of Korea.

Division of Materials Science and Engineering, Pusan National University, Busan 46242, Republic of Korea.

出版信息

Nanomaterials (Basel). 2024 Aug 8;14(16):1329. doi: 10.3390/nano14161329.

Abstract

Anisotropic bulk magnets of ThMn-type SmFeV with a high coercivity () were successfully fabricated. Powders with varying particle sizes were prepared using the ball milling process, where the particle size was controlled with milling time. A decrease in occurred in the heat-treated bulk pressed from large-sized powders, while heavy oxidation excessively occurred in small powders, leading to the decomposition of the SmFeV (1-12) phase. The highest of 8.9 kOe was achieved with powders ball-milled for 5 h due to the formation of the grain boundary phase. To improve the maximum energy product (()), which is only 2.15 MGOe in the isotropic bulk, anisotropic bulks were prepared using the same powders. The easy alignment direction, confirmed by XRD and EBSD measurements, was <002>. Significant enhancements were observed, with saturation magnetization () increasing from 59 to 79 emu/g and a remanence ratio (/) of 83.7%. () reaching 7.85 MGOe. For further improvement of magnetic properties, controlling oxidation is essential to form a uniform grain boundary phase and achieve perfect alignment with small grain size.

摘要

成功制备了具有高矫顽力()的ThMn型SmFeV各向异性块状磁体。使用球磨工艺制备了不同粒径的粉末,其中粒径通过球磨时间控制。由大尺寸粉末压制而成的热处理块状磁体的矫顽力降低,而小尺寸粉末中过度发生严重氧化,导致SmFeV(1-12)相分解。由于形成了晶界相,球磨5小时的粉末获得了最高8.9 kOe的矫顽力。为了提高各向同性块状磁体中仅为2.15 MGOe的最大磁能积(),使用相同的粉末制备了各向异性块状磁体。通过XRD和EBSD测量确定的易磁化取向方向为<002>。观察到显著增强,饱和磁化强度()从emu/g增加到79 emu/g,剩磁比(/)为83.7%,最大磁能积()达到7.85 MGOe。为了进一步改善磁性能,控制氧化对于形成均匀的晶界相并实现小晶粒尺寸的完美取向至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76c4/11357663/2a998628f86a/nanomaterials-14-01329-g001.jpg

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