TY - JOUR
T1 - Engineering Light-Element Modified LaFe11.6Si1.4 Compounds Enables Tunable Giant Magnetocaloric Effect
AU - Zhang, Fengqi
AU - Wu, Ziying
AU - Zhang, Xiaofang
AU - Chi, Xiang
AU - Wu, Zhenduo
AU - Gao, Jianrong
AU - Chen, Huaican
AU - Yin, Wen
AU - Lienert, Ulrich
AU - Dippel, Ann Christin
AU - Zimmermann, Martin v.
AU - van Dijk, Niels
AU - Brück, Ekkes
AU - Ren, Yang
N1 - Publisher Copyright:
© 2025 The Author(s). Advanced Science published by Wiley-VCH GmbH.
PY - 2025/6/12
Y1 - 2025/6/12
N2 - Magnetocaloric refrigeration is one of the most promising next-generation solid-state caloric techniques to revolutionize the traditional air-compression technique. The La(Fe,Si)13-based materials are recognized as candidates with potential for practical applications. However, flexible strategies to improve the Curie temperature (TC) and further achieve the tunable giant magnetocaloric effect (GMCE) still need to be developed. Here, the systematic experimental investigation on a series of light elements (C, F, S) modified LaFe11.6Si1.4 compounds are presented. It is found that all modified samples exhibit a higher TC, with a negligible impact on the thermal hysteresis. The GMCE performance in C- and S-modified samples is significantly degraded, but the maximum magnetic entropy change |Δ sm| for the optimally doped F sample can be well maintained at 19.2 J kg−1 K−1 for a field change of 2 T. The preferential site occupancy of dopants is determined, and the microstructural observation and metastable atomic changes have also been analyzed. It is concluded that interstitial doping is more efficient to shift TC. The first-order transition can however not be maintained upon doping due to changes in the hybridization. These findings highlight the importance of the interplay between the lattice pressure effect and the covalent hybridization for this material family.
AB - Magnetocaloric refrigeration is one of the most promising next-generation solid-state caloric techniques to revolutionize the traditional air-compression technique. The La(Fe,Si)13-based materials are recognized as candidates with potential for practical applications. However, flexible strategies to improve the Curie temperature (TC) and further achieve the tunable giant magnetocaloric effect (GMCE) still need to be developed. Here, the systematic experimental investigation on a series of light elements (C, F, S) modified LaFe11.6Si1.4 compounds are presented. It is found that all modified samples exhibit a higher TC, with a negligible impact on the thermal hysteresis. The GMCE performance in C- and S-modified samples is significantly degraded, but the maximum magnetic entropy change |Δ sm| for the optimally doped F sample can be well maintained at 19.2 J kg−1 K−1 for a field change of 2 T. The preferential site occupancy of dopants is determined, and the microstructural observation and metastable atomic changes have also been analyzed. It is concluded that interstitial doping is more efficient to shift TC. The first-order transition can however not be maintained upon doping due to changes in the hybridization. These findings highlight the importance of the interplay between the lattice pressure effect and the covalent hybridization for this material family.
KW - La(Fe,Si)
KW - light element doping
KW - magnetocaloric energy conversions
KW - magnetocaloric materials
KW - synchrotron X-ray and neutron diffractions
UR - https://www.scopus.com/pages/publications/105005548873
U2 - 10.1002/advs.202416288
DO - 10.1002/advs.202416288
M3 - 文章
C2 - 40387273
AN - SCOPUS:105005548873
SN - 2198-3844
VL - 12
JO - Advanced Science
JF - Advanced Science
IS - 22
M1 - 2416288
ER -