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Structural Modulation of Magnetic Softness in Fe-Based Amorphous Alloys via Pulse Current Training

  • Shumin Ye
  • , Zida Zhang
  • , Rie Umetsu
  • , Huaping Ding
  • , Xiong Liang*
  • , Yuanfei Cai
  • , Yan Zhang
  • , Yuqiang Yan
  • , Zhenduo Wu*
  • , Jiang Ma
  • , Xing Tong*
  • , Haibo Ke
  • , Hai Yang Bai
  • , Wei Hua Wang
  • *Corresponding author for this work
  • Songshan Lake Materials Laboratory
  • Shenzhen University
  • CAS - Institute of Physics
  • Tohoku University
  • CAS - Ningbo Institute of Material Technology and Engineering
  • Yangzhou Polytechnic University
  • University of Chinese Academy of Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

Fe-based amorphous alloys, despite their intrinsically low magnetocrystalline anisotropy, suffer from quasi-dislocation dipoles and localized stress fields that impede domain-wall motion and increase coercivity. Here, we introduce pulse current training (PCT) as an energy-efficient technique to overcome these limitations in a Fe76Si9B10P5 ribbon. As quenched ribbons exhibit a coercivity Hc ∼ 10.6 A m−1 and the optimized infrared annealing reduced Hc ∼ 2 A m−1 with a saturation magnetization Ms ∼ 162 emu g−1. By applying controlled square-wave current pulses (J = 7000 A cm−2, Tw:Tp = 1:2, Tp = 0.06 s) over 18–50 cycles, PCT further reduces Hc to below 1 A m−1 and increases Ms to 179 emu g−1. Within a moderate-cycle window, the ribbons maintain sufficient bendability for a practical core. Ultra-rapid thermal annealing performed as a control reduces Hc to ∼2.5 A m−1 but does not reach the level achieved by PCT, indicating that rapid heating alone cannot account for the superior magnetic softening. Finite-element simulations and structural characterization show that PCT produces rapid and nearly uniform Joule heating, enabling efficient structural relaxation and enhanced medium-range order while retaining an overall amorphous structure. Compared with conventional annealing, PCT implements a distinct, pulse energy injection pathway on the potential energy landscape, enabling more controllable tuning of amorphous configurations. This work establishes PCT as a versatile approach for tailoring both magnetic and mechanical properties in amorphous soft magnetic materials, paving the way for their optimized application in advanced electromagnetic devices.

Original languageEnglish
Article numbere70412
JournalRare Metals
Volume45
Issue number6
DOIs
StatePublished - Jun 2026

Keywords

  • amorphous alloys
  • microstructures
  • pulse current training
  • soft magnetic properties

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