Unusual Magnetocaloric Effect Triggered by Spin Reorientation

Author:

Song Yuzhu1,Zhang Jimin1,Li Hengchao1,Zhong Hong1,Long Feixiang1,Wang Zhan2,Xu Yuanji3,Zheng Xinqi4,Zhang Hu4,Huang Qingzhen5,Zhang Ying2,Xing Xianran6,Chen Jun17ORCID

Affiliation:

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

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

3. Institute for Applied Physics University of Science and Technology Beijing Beijing 100083 China

4. School of Materials Science and Engineering University of Science and Technology Beijing Beijing 100083 China

5. NIST Center for Neutron Research National Institute of Standards and Technology Gaithersburg MD 20899–6102 USA

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

7. Hainan University Haikou 570228 China

Abstract

AbstractAdvancements and utilization of magnetic refrigeration technology hinge on the ongoing enhancement and optimization of magnetic refrigeration material properties. Nevertheless, the intricacy of the magnetocaloric effect (MCE) mechanism has emerged as a bottleneck, constraining the progress and refinement of magnetic refrigeration materials. In this study, a classic magnetic system is chosen to investigate the mechanism of MCE across four different scales–macroscopic magnetism, micrometer‐scale magnetic domains, atomic magnetic moments, and electronic structure. It simultaneously exhibits two inverse MCEs and one direct MCE, with a working temperature span as wide as 125 K (most are <50 K) for the direct MCE. The measurements of the vibrating sample magnetometer, in situ Lorentz electron microscopy and variable‐temperature neutron powder diffraction directly reveal that the complex magnetic entropy changes arise from the magnetic domain wall pinning, the instability of Ho magnetic moments, and the spin rotation. First‐principles calculations elucidate the crucial role of strong hybridization between localized Ho and itinerant Co electrons in the spin reorientation of HoCo4Al. This study contributes significantly to comprehending the induction mechanism of the MCE and holds vital reference value for exploring new magnetic refrigeration materials and enhancing MCE performance.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

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