材料科学
磁铁
凝聚态物理
矫顽力
合金
旋节分解
各向异性
饱和(图论)
相(物质)
透射电子显微镜
芯(光纤)
纳米技术
复合材料
机械工程
数学
有机化学
物理
组合数学
工程类
化学
量子力学
作者
Lizhong Zhao,Rui Su,Lin Wen,Wei Li,Xiaolian Liu,Zhenhua Zhang,Rongzhi Zhao,Yuyan Han,Xuefeng Zhang,Wei Li
标识
DOI:10.1002/adma.202203503
摘要
ThMn12 -type SmFe12 -based permanent magnets have exhibited great potential in advanced magnet motors because of their high temperature stability of magnetic properties. However, the applications could be seriously limited due to the trade-off between phase stability and intrinsic magnetic properties. In this work, an effective solution is demonstrated by constructing the core-shell structure (Sm-rich shell and Y-rich core) via a spontaneous spinodal decomposition process. The anisotropy field for the (Sm0.75 Y0.25 )(Fe0.8 Co0.2 )11.25 Ti0.75 alloy is mostly optimized to be 9.24 T at room temperature. Such an enhancement is ascribed to the pinning process of domain walls by the magnetic-hardening Sm-rich shell, which is directly observed by in situ Lorentz transmission electron microscopy and reconstructed by micromagnetic simulation. Moreover, the phase stability and saturation magnetization are simultaneously increased, which is attributed to the synergistic effect of Y, Co, and Ti substitutions. More importantly, the high μ0 Ms value of 1.52 T is comparable to the reported (Sm,Zr)Fe12 -based bulk alloys that contain a larger amount of soft α-Fe phases, indicating that this strategy is more promising toward bulk magnets. The present study provides a significant concept for the development of advanced permanent magnets and also has implications for understanding the structural origin of intrinsic magnetic configurations.
科研通智能强力驱动
Strongly Powered by AbleSci AI