J. Mater. Sci. Technol. ›› 2024, Vol. 193: 90-97.DOI: 10.1016/j.jmst.2024.01.041

• Research Article • Previous Articles     Next Articles

Tailoring the cryogenic magnetism and magnetocaloric effect from Zr substitution in EuTiO3 perovskite

Huicai Xiea,b,1, Xiaodong Lvc,1, Zhaojun Moa,*, Jian Gongc, Xinqiang Gaoa, Zhenxing Lid, Jinqi Wue, Jun Shena,d,*   

  1. aKey Laboratory of Rare Earths, Ganjiang Innovation Academy, Chinese Academy of Sciences, Ganzhou 341119, China
    bFaculty of Materials Metallurgy and Chemistry, Jiangxi University of Science and Technology, Ganzhou 341000, China
    cCollege of Physics and Electronic Information, Inner Mongolia Normal University, Hohhot 010022, China
    dDepartment of Energy and Power Engineering, School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, China
    eShimadzu China Co., LTD., Guangzhou 510656, China
  • Received:2023-09-27 Revised:2024-01-10 Accepted:2024-01-25 Published:2024-09-10 Online:2024-09-05
  • Contact: *E-mail addresses: mozhaojun@gia.cas.cn (Z. Mo), jshen@gia.cas.cn (J. Shen).
  • About author:1These authors contributed equally to this work.

Abstract: Refrigeration in the liquid helium temperature range provides vital technological support for many scientific frontiers and engineering technologies. The considerable magnetocaloric effect (MCE) makes EuTiO3 a potential candidate for magnetic refrigeration near liquid helium temperature. More interestingly, the magnetic transition from antiferromagnetism to ferromagnetism offers the possibility to tailor the magnetism and improve the MCE of this magnetic system. In this study, the magnetic properties and MCE of EuTi0.875Zr0.125O3 were systematically investigated by first-principles calculation and experiments. The substitution of Zr induces a significant lattice expansion and alters the electronic interactions, leading to a dominance of ferromagnetism in the compound. Remarkable low-field MCE performance has been achieved attributed to the enhanced ferromagnetism and low saturation field. Under the field change of 0-1 T, the maximum magnetic entropy change ($-\Delta S_{M}^{\max }$) and adiabatic temperature change ($\Delta T_{a d}^{\max }$) are 17.9 J kg-1 K-1 and 6.1 K, respectively. It is worth noting that the $-\Delta S_{M}^{\max }$ of EuTi0.875Zr0.125O3 reaches 10.3 J kg-1 K-1 for a field change of 0-0.5 T, making it one of the best magnetocaloric materials ever reported operating in the liquid helium temperature range.

Key words: Magnetic properties, Magnetocaloric effect, EuTi0.875Zr0.125O3, Ferromagnetism, Magnetic refrigeration