Optimizing nanostructure and magnetic softness of Fe-Si-B-Cu nanocrystalline alloys via tailoring melt-spun structure by Al microalloying

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

1 Scopus Citations
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Author(s)

  • Junsheng Xue
  • Yanhui Li
  • Zhengwang Zhu
  • Li Jiang
  • Junhua Luan
  • And 2 others
  • Haifeng Zhang
  • Wei Zhang

Detail(s)

Original languageEnglish
Article number100567
Journal / PublicationMaterials Today Nano
Volume29
Online published3 Jan 2025
Publication statusPublished - Mar 2025

Abstract

An Al microalloying strategy has been proposed to optimize the nanostructure and magnetic softness of Fe-based Fe-Si-B-Cu nanocrystalline alloys via tailoring their amorphous precursor structure. By alloying a minor amount of Al in a Fe81.5Si4B13Cu1.5 alloy, the melt-spun structure transforms from a completely amorphous phase to an amorphous matrix dispersed with appropriately high number-density (Nd) α-Fe nanograins with the average size (dα-Fe) of less than 9 nm, while the alloy ribbons maintain ductile. The Nd and dα-Fe in a Fe81.5-xSi4B13Cu1.5Alx (x = 0.6) alloy ribbon are 2.9 × 1021 m−3 and 7.1 nm, respectively, and further raising x to 1.0 increases the dα-Fe and Nd slightly. During melt-spinning, the attraction and aggregation of Al atoms with Cu atoms induce Cu clustering, which in turn promotes the precipitation of the high-Nd α-Fe nanograins by taking Cu-clusters as heterogeneous nucleation sites. The unique melt-spun structure of the Al-added alloys enables the achievement of a fine nanostructure and excellent magnetic softness under conventional annealing conditions. The average grain size of α-Fe (Dα-Fe), coercivity, and saturation magnetic flux density (Bs) of the nanocrystalline alloy with x = 0.6 are 21.0 nm, 13.2 A/m, and 1.77 T, respectively, demonstrating a significant improvement compared to the x = 0 alloy, whose values are 49.1 nm, 213.6 A/m and 1.78 T, respectively. The refined nanostructure is attributed to the competitive growth effect between the high-Nd pre-exiting and newly-formed α-Fe nanograins/nuclei promoted by the Al-induced Cu-clusters. The fine nanostructure facilitates the formation of regular magnetic domain and weakens pinning effects, which leads to improved magnetic softness. This work provides inspiration for the development of industrializable high-Bs nanocrystalline alloys. © 2025 Elsevier Ltd

Research Area(s)

  • Al microalloying, Competitive growth effect, Cu clustering, Fe-based nanocrystalline alloy, Pre-existing α-Fe nanograin, Soft magnetic properties

Citation Format(s)

Optimizing nanostructure and magnetic softness of Fe-Si-B-Cu nanocrystalline alloys via tailoring melt-spun structure by Al microalloying. / Xue, Junsheng; Li, Yanhui; Zhu, Zhengwang et al.
In: Materials Today Nano, Vol. 29, 100567, 03.2025.

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review