磁制冷
制冷剂
材料科学
铁磁性
液氦
氦
分析化学(期刊)
凝聚态物理
热力学
磁场
原子物理学
磁化
色谱法
热交换器
物理
化学
量子力学
作者
Huicai Xie,Jiaxin Jiang,Lu Tian,Zhaojun Mo,Guodong Liu,Xinqiang Gao,Jun Shen,Yao Liu
标识
DOI:10.1002/aelm.202400176
摘要
Abstract Rare earth‐based perovskites have become an attractive research interest in the field of cryogenic magnetic refrigerants due to their unique advantages in practical applications. The remarkable magnetocaloric effect (MCE) renders EuTiO 3 a potential magnetic refrigerant in the liquid helium temperature range. More impressively, the tunability between antiferromagnetism (AFM) and ferromagnetism (FM) provides the feasibility of tailoring the magnetism and enhancing the magnetocaloric performance. In this study, the magnetism of EuTi 0.75 Al 0.125 Zr 0.125 O 3 is investigated in depth through first‐principles calculations and experimental methods. Both theoretical calculations and experimental results reveal that it exhibits significant ferromagnetism due to the AFM‐FM magnetic transition promoted by the co‐substitution of Al and Zr. Lattice expansion and altered electronic interactions are responsible for the FM behavior, which leads to a significant enhancement of the MCE. With the field change of 0−1 T, the peak values of magnetic entropy change (−Δ S M ), refrigerating capacity (RC), and adiabatic temperature change (Δ T ad ) reach 18.9 J kg −1 K −1 , 77.7 J kg −1 , and 7.4 K, respectively. More surprisingly, the values of maximum magnetic entropy change () and maximum adiabatic temperature change for EuTi 0.75 Al 0.125 Zr 0.125 O 3 reach 11.4 J kg −1 K −1 and 3.7 K under the field change of 0−0.5 T, respectively. The remarkable magnetocaloric performance proves it to be a brilliant magnetic refrigerant operating near liquid helium temperature.
科研通智能强力驱动
Strongly Powered by AbleSci AI