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磁致伸缩金属材料的研究进展

Translated title of the contribution: Research progress in magnetostrictive metallic materials
  • Chao Zhou
  • , Peng Qiang Hu
  • , Rui Sheng Zhang
  • , Hong Wen Chen
  • , Zhi Yong Dai
  • , Qi Zhong Zhao
  • , Fang Hua Tian
  • , Sen Yang
  • Xi'an Jiaotong University

Research output: Contribution to journalReview articlepeer-review

Abstract

Magnetostrictive materials can generate strain under magnetic fields, enabling the mutual conversion between magnetic energy and mechanical energy, which makes them highly suitable for sensing, transduction, and actuation applications. Typical magnetostrictive metallic materials mainly include Laves-phase rare-earth intermetallic compounds, Fe-based alloys (such as FeGa and FeAl), and ferromagnetic shape memory alloys. The essence of magnetostriction lies in magnetoelastic coupling, where the magnetic state of the material interacts with lattice strain. As a result, the crystal structure directly influences the magnetostrictive effect. This paper reviews the research progress in these three types of magnetostrictive alloys from the perspectives of crystal structure, underlying mechanisms, and advances in new materials and processing techniques. It elucidates the interrelationships among these factors and offers an outlook on future research and development trends.

Translated title of the contributionResearch progress in magnetostrictive metallic materials
Original languageChinese (Traditional)
Article number240009
JournalScientia Sinica: Physica, Mechanica et Astronomica
Volume56
Issue number4
DOIs
StatePublished - 1 Apr 2026

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