Design of Excellent Mechanical Performances and Magnetic Refrigeration via In Situ Forming Dual‐Phase Alloys

Author:

Zhong Hong1,Song Yuzhu1ORCID,Long Feixiang1,Lu Hao1,Ai Minjun1,Li Tianyu1,Yao Yonghao1,Sakai Yuki23,Ikeda Masahito3,Takahashi Kazuki3,Azuma Masaki23,Hu Fengxia4,Xing Xianran5,Chen Jun16ORCID

Affiliation:

1. Department of Physical Chemistry Beijing Advanced Innovation Center for Materials Genome Engineering University of Science and Technology Beijing Beijing 100083 China

2. Kanagawa Institute of Industrial Science and Technology (KISTEC) 705‐1 Shimoimaizumi Ebina Kanagawa 243‐0435 Japan

3. Laboratory for Materials and Structures Institute of Innovative Research Tokyo Institute of Technology 4259 Nagatsuta, Midori‐ku Yokohama Kanagawa 226‐8503 Japan

4. Beijing National Laboratory for Condensed Matter Physics Institute of Physics Chinese Academy of Sciences Beijing 100190 China

5. Institute of Solid‐State Chemistry University of Science and Technology Beijing Beijing 100083 China

6. Hainan University Haikou 570228 China

Abstract

AbstractMagnetic refrigeration technology can achieve higher energy efficiency based on the magnetocaloric effect (MCE). However, the practical application of MCE materials is hindered by their poor mechanical properties, making them challenging to process into devices. Conventional strengthening strategies usually lead to a trade‐off with refrigeration capacity reduction. Here, a novel design is presented to overcome this dilemma by forming dual‐phase alloys through in situ precipitation of a tough magnetic refrigeration phase within an intermetallic compound with excellent MCE. In the alloy 87.5Gd–12.5Co, incorporating the interconnected tough phase Gd contributes to enhanced strength (≈505 MPa) with good ductility (≈9.2%). The strengthening phase Gd simultaneously exhibits excellent MCE, enabling the alloy to achieve a peak refrigeration capacity of 720 J kg−1. Moreover, the alloy shows low thermal expansion induced by the synergistic effect of the two phases. It is beneficial for maintaining structural stability during heat exchange in magnetic refrigeration. The coupling interaction between the two magnetic phases can broaden the refrigeration temperature range and reduce hysteresis. This study guides the development of new high‐performance materials with an excellent combination of mechanical and magnetic refrigeration properties as needed for gas liquefaction and refrigerators.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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