Large Nonhysteretic Volume Magnetostriction in a Strong and Ductile High-Entropy Alloy.

Gou, Junming; Pan, Yun; Yang, Tianzi; Liu, Yao; Liu, Guoxin; Chen, Ying; Zhang, Changsheng; Li, Hao et al. · Adv Mater · 2024

basic_science · Level V

Where this comes from

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., nonhysteretic 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, a magnetic high-entropy alloy (HEA) Fe<sub>35</sub>Co<sub>35</sub>Al<sub>10</sub>Cr<sub>10</sub>Ni<sub>10</sub> is reported that can rectify these challenges, exhibiting an unprecedented combination of large nonhysteretic 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 nanoscale 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.