制作
矫顽力
纳米技术
纳米结构
铁磁性
磁铁
钴
镨
工程物理
材料科学
机械工程
凝聚态物理
冶金
医学
物理
替代医学
病理
工程类
作者
Yingxin Hua,Xiaohong Li,Jiaxu Li,Xiang Luo,Yuqing Li,Wenyue Qin,Liqiang Zhang,Jianwei Xiao,Weixing Xia,Ping Song,Ming Yue,Haitian Zhang,Xiangyi Zhang
出处
期刊:Science
[American Association for the Advancement of Science (AAAS)]
日期:2024-08-08
卷期号:385 (6709): 634-641
被引量:1
标识
DOI:10.1126/science.adp2328
摘要
Materials with multifunctionality affect society enormously. However, the inability to surmount multiple functionality trade-offs limits the discovery of next-generation multifunctional materials. Departing from conventional alloying design philosophy, we present a hierarchical nanostructure (HNS) strategy to simultaneously break multiple performance trade-offs in a material. Using a praseodymium-cobalt (PrCo 5 ) ferromagnet as a proof of concept, the resulting HNS outperforms contemporary high-temperature ferromagnets with a 50 to 138% increase in electrical resistivity while achieving their highest energy density. Our strategy also enables an exceptional thermal stability of coercivity (−0.148%/°C)—a key characteristic for device accuracy and reliability—surpassing that of existing commercial rare-earth magnets. The multifunctionality stems from the deliberately introduced nanohierarchical structure, which activates multiple micromechanisms to resist domain wall movement and electron transport, offering an advanced design concept for multifunctional materials.
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