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马天宇

教授    博士生导师    硕士生导师

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  • 学历: 硕博连读
  • 学位: 博士
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课题组苟峻铭博士一篇功能高熵合金论文被ADVANCED MATERIALS录用

发布时间:2024-06-26
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发布时间:
2024-06-26
文章标题:
课题组苟峻铭博士一篇功能高熵合金论文被ADVANCED MATERIALS录用
内容:

    2024年6月25日,课题组青秀教师苟峻铭博士和博士生潘贇共同完成的论文“Large Non-hysteretic Volume Magnetostriction in a Strong and Ductile High-Entropy Alloy”被材料领域顶级刊物ADVANCED MATERIALS录用!祝贺他们!

    该论文利用高熵思路设计出一种新型功能合金——又强又韧的无滞后大体磁致伸缩材料。

    

Abstract:

 

    Rapid development of smart technologies poses a big challenge for magnetostrictive materials, which should not only permit isotropic and hysteresis-free actuation (i.e. non-hysteretic volume change) in magnetic fields, but also have high strength and high ductility. Unfortunately, the magnetostriction from self-assembly of ferromagnetic domains is volume-conserving; the volume magnetostriction from field-induced first-order phase transition has large intrinsic hysteresis; and most prototype magnetostrictive materials are intrinsically brittle. Here we report a magnetic high-entropy alloy (HEA) Fe35Co35Al10Cr10Ni10 that can rectify these challenges, exhibiting an unprecedented combination of large non-hysteretic volume magnetostriction, high tensile strength and large elongation strain, over a wide working temperature range from room temperature down to 100 K. Its exceptional properties stem from a dual-phase microstructure, where the face-centered-cubic (FCC) matrix phase with nano-scale compositional and structural fluctuations can enable a magnetic-field-induced transition from low-spin small-volume state to high-spin large-volume state, and the ordered body-centered-cubic (BCC) B2 phase contributes to mechanical strengthening. The present findings may provide insights into designing unconventional and technologically-important magnetostrictive materials.