Achieving Tunable High‐Performance Giant Magnetocaloric Effect in Hexagonal Mn‐Fe‐P‐Si Materials through Different D‐Block Doping

Author:

Zhang Fengqi12ORCID,Feng Panjun34,Kiecana Anika2,Wu Ziying2,Bai Zhaowen1,Li Wenjie1,Chen Huaican56,Yin Wen56,Yan Xun‐Wang7,Ma Fengjie34,Dijk Niels van2,Brück Ekkes2,Ren Yang18

Affiliation:

1. Department of Physics City University of Hong Kong Kowloon Hong Kong SAR 999077 China

2. Fundamental Aspects of Materials and Energy (FAME) Faculty of Applied Sciences Delft University of Technology Mekelweg 15 Delft 2629JB The Netherlands

3. The Center for Advanced Quantum Studies and School of Physics and Astronomy Beijing Normal University Beijing 100875 China

4. Key Laboratory of Multiscale Spin Physics (Ministry of Education) Beijing Normal University Beijing 100875 China

5. Spallation Neutron Source Science Center Dalang Dongguan 523803 China

6. Institute of High Energy Physics Chinese Academy of Sciences Beijing 100049 China

7. College of Physics and Engineering Qufu Normal University Qufu Shandong 273165 China

8. Center for Neutron Scattering City University of Hong Kong Kowloon Hong Kong SAR 999077 China

Abstract

AbstractCompared with traditional techniques, solid‐state magnetocaloric phase transition materials (MPTMs), based on the giant magnetocaloric effect (GMCE), can achieve a higher energy conversion efficiency for caloric applications. As one of the most promising MPTMs, the hexagonal (Mn,Fe)2(P,Si)‐based compounds host some advantages, but the existing hysteresis and relatively unstable GMCE properties need to be properly tackled. In this study, it is found that substitutions with Ni, Pd, and Pt can maintain and even enhance the GMCE (≈8.7% maximum improvement of |Δsm|). For a magnetic field change of Δμ0H = 2 T, all samples obtain a |Δsm| in the range of 20–25 J kg−1 K−1 with a low thermal hysteresis ΔThys (≤5.6 K). The performance surpasses almost all other (Mn,Fe)2(P,Si)‐based materials with ΔThys (<10 K) reported until now. The occupancy of substitutional Ni/Pd/Pt atoms is determined by X‐ray diffraction, neutron diffraction, and density functional theory calculations. The difference in GMCE properties upon doping is understood from the competition between a weakening of the magnetic exchange interactions and the different degrees of orbital hybridization among 3d‐4d‐5d elements. The studies elaborate on the responsible mechanism and provide a general strategy through d‐block doping to further optimize the GMCE of this materials family.

Funder

City University of Hong Kong

National Natural Science Foundation of China

Publisher

Wiley

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