Unraveling the origin of local chemical ordering structure in Fe-based solid solutions

Author:

Wu Yuye1ORCID,Yan Keyu1,Xu Yichen1,Niu Jiejue1,Li Yue2ORCID,Gault Baptiste3ORCID,Zhao Shiteng1ORCID,Wang Xiaoxiao1,Li Yunquan1,Wang Jingmin1ORCID,Skokov Konstantin4ORCID,Gutfleisch Oliver5,Wu Haichen6,Jiang Daqiang7,He Yangkun1,Jiang Chengbao1ORCID

Affiliation:

1. Beihang University

2. Max-Planck-Institut für Eisenforschung GmbH

3. Max Planck Institute for Iron Research

4. Technical University of Darmstadt

5. Department of Material Science, Technical University of Darmstadt

6. Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences

7. China University of Petroleum

Abstract

Abstract Local chemical order (LCO) can exert pronounced effects on both structural and functional properties, tailoring LCO domains at (sub-)nanoscale could offer an alternative material-design concept for yet unexplored performance. However, the origin of LCO remains an open question, making accurate manipulation of LCO extremely challenging. Here we selected the Fe-Ga magnetostrictive materials and demonstrated that LCO tetragonal structures play a significant role in optimizing the magnetostrictive properties. The “full-lifecycle”, including formation, evolution and dissolution of LCO, is concretely studied from the atomic-scale up by combined experimental and theoretical studies. The dynamic precipitation and dissolution processes of LCO L60 domains during isothermal aging are directly observed based on in-situ high-resolution transmission electron microscopy images, and the corresponding mechanisms are revealed by first-principles calculation. Based on the results, we evidence that LCO domain is a frozen-intermediate-states of a kinetically-slow solid-state phase transformation leading to the formation of the long-range-ordered equilibrium phase with a face-center-cubic structure. We confirm the reversibility of LCO during cycling treatments. Our findings shed light on the origin of LCO in a range of material systems, and we discuss directions for developing materials with superior performance by manipulating LCO domains.

Publisher

Research Square Platform LLC

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