| Literature DB >> 34309089 |
Li Lou1, Yuqing Li2, Xiaohong Li1, Hailing Li1, Wei Li1, Yingxin Hua1, Weixing Xia3, Zhihe Zhao3, Haitian Zhang4, Ming Yue2, Xiangyi Zhang1.
Abstract
High-performance ferromagnetic materials are essential for energy conversion and electronic devices. However, the random and nonuniform magnetization reversal in ferromagnetics limits their performance that can be achieved. Here, through both micromagnetism simulations and experiments, a directional magnetization reversal that initiates first from large grains toward smaller ones is discovered by engineering Nd2 Fe14 B/α-Fe gradient nanostructures. Such directional magnetization reversal enables a rare combination of high magnetization and large coercivity, thus leading to a record-high energy density (26 MG Oe) for isotropic permanent magnetic materials, which is ≈50% higher than that of its gradient-free counterpart. The unusual magnetization reversal originates from an ordered arrangement of grain sizes in the gradient material, where the large grains have a lower reversal field than that of the smaller ones. These findings open up new opportunities for developing high-performance magnetic materials.Keywords: energy density; ferromagnetic materials; gradients; hybrid nanostructures; magnetization reversal; permanent-magnet materials
Year: 2021 PMID: 34309089 DOI: 10.1002/adma.202102800
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849