中国物理B ›› 2025, Vol. 34 ›› Issue (8): 87503-087503.doi: 10.1088/1674-1056/adda0c
Peng Shen(沈鹏)1, Hui-Dong Qian(千辉东);1,†, Jingzhi Han(韩景智);1,‡, Tao Liu(刘涛)2, Zhen Yan(闫震)3, Ming Ji(姬明)4, Lei Zhou(周磊)2, Weiqiang Liu(刘卫强)4, Shunquan Liu(刘顺荃)1, Wenyun Yang(杨文云)1, Yan Li(李岩)5, Huihui Cao(曹慧慧)3, Ming Yue(岳明)4, Jinbo Yang(杨金波);1,2, and Yingchang Yang(杨应昌)1
Peng Shen(沈鹏)1, Hui-Dong Qian(千辉东);1,†, Jingzhi Han(韩景智);1,‡, Tao Liu(刘涛)2, Zhen Yan(闫震)3, Ming Ji(姬明)4, Lei Zhou(周磊)2, Weiqiang Liu(刘卫强)4, Shunquan Liu(刘顺荃)1, Wenyun Yang(杨文云)1, Yan Li(李岩)5, Huihui Cao(曹慧慧)3, Ming Yue(岳明)4, Jinbo Yang(杨金波);1,2, and Yingchang Yang(杨应昌)1
摘要: The enhancement of coercivity in Nd-Fe-B sintered magnets modified by Pr$_{58}$Dy$_{10}$Cu$_{32}$ alloy was investigated through scanning electron microscope (SEM) and in-situ magneto-optic Kerr effect (MOKE) microscopy. The modification treatment resulted in the formation of a smooth and continuous weakly magnetic grain boundary layer and the (Nd,Pr,Dy)$_{2}$Fe$_{14}$B main phase with a high magnetocrystalline anisotropy field, leading to an increased coercivity of 23 kOe. MOKE observations revealed that the dynamic evolution of the maze domain area under an external magnetic field varied significantly between the original and modified magnets. Compared with the original magnets, the modified magnets exhibited a slower decrease in maze domain area during magnetization and a slower increase during reverse magnetization, contributing to the observed coercivity enhancement.
中图分类号: (Studies of specific magnetic materials)