4.8 Article

Beyond Solid Solution High-Entropy Alloys: Tailoring Magnetic Properties via Spinodal Decomposition

期刊

ADVANCED FUNCTIONAL MATERIALS
卷 31, 期 7, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202007668

关键词

coherency constraints; density functional theory; high‐ entropy alloys; magnetic properties; spinodal decomposition

资金

  1. German Research Foundation (Deutsche Forschungsgemeinschaft, DFG) within the Priority Programme 2006 (Compositionally Complex Alloys-High Entropy Alloys)
  2. NWO/STW (VIDI grant) [15707]
  3. China Scholarship Council [201706460026]
  4. National Natural Science Foundation of China [51971248]
  5. Hunan Special Funding for the Construction of Innovative Province [2019RS1001]
  6. Deutsche Forschungsgemeinschaft [405553726-TRR 270]
  7. Projekt DEAL

向作者/读者索取更多资源

The high-entropy alloy concept has evolved from stabilizing solid solutions to rendering them metastable through spinodal decomposition, in order to enhance magnetic properties. By adjusting the composition to form Fe-Co enriched regions, the magnetic properties of the decomposed alloy can be improved.
Since its first emergence in 2004, the high-entropy alloy (HEA) concept has aimed at stabilizing single- or dual-phase multi-element solid solutions through high mixing entropy. Here, this strategy is changed and renders such massive solid solutions metastable, to trigger spinodal decomposition for improving the alloys' magnetic properties. The motivation for starting from a HEA for this approach is to provide the chemical degrees of freedom required to tailor spinodal behavior using multiple components. The key idea is to form Fe-Co enriched regions which have an expanded volume (relative to unconstrained Fe-Co), due to coherency constraints imposed by the surrounding HEA matrix. As demonstrated by theory and experiments, this leads to improved magnetic properties of the decomposed alloy relative to the original solid solution matrix. In a prototype magnetic FeCoNiMnCu HEA, it is shown that the modulated structures, achieved by spinodal decomposition, lead to an increase of the Curie temperature by 48% and a simultaneous increase of magnetization by 70% at ambient temperature as compared to the homogenized single-phase reference alloy. The findings thus open a pathway for the development of advanced functional HEAs.

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