Soft-magnetic fibers (SMFs) play a crucial role in energy conversion, transmission, and storage within electronic devices. However, conventional SMFs have poor plasticity and are therefore difficult to withstand long-term tensile, torsional, and shear deformation. A high fraction of grain boundaries could improve plastic deformability of conventional SMFs, but deteriorates the coercivity. This severely limits their applications in flexible electronics and multifunctional components. Herein, we propose a strategy to overcome this dilemma, which is realized by coarsening the grains of a Fe(34)Co(29)Ni(29)Al(3)Ta(3)Si(2) high entropy alloy (HEA) fiber containing ordered coherent nanoprecipitates with small lattice misfit via a simple one-step in-rotating-water spinning method. This allows to reduce domain wall pinning and improve dislocation mobility. The resultant micron-diameter soft-magnetic HEA fiber has a tensile strength of 674âMPa at 23% elongation, a low coercivity of 8.1âOe, a moderate magnetization of 116âemu/g at 10âkOe and a high Curie temperature of 770âK.
A one-step fabrication of soft-magnetic high entropy alloy fiber with excellent strength and flexibility.
一种一步法制备具有优异强度和柔韧性的软磁高熵合金纤维
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作者:Ma Yan, Kou Zongde, Yang Weiming, He Aina, Dong Yaqiang, Man Qikui, Liu Haishun, Li Zhiming, Inoue Akihisa, Li Jiawei
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2024 | 起止号: | 2024 Dec 4; 15(1):10549 |
| doi: | 10.1038/s41467-024-54984-7 | ||
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