Magnetocaloric effect of GdTbDyErPr rare-earth high-entropy alloy

Authors

  • Yu LIU School of Rare Earth Industry, Inner Mongolia University of Science and Technology, Baotou, China /Baotou Rewin Rare Earth Metal Materials Co.,Ltd., Baotou, China
  • Lei GAO National Key Laboratory of Baiyunobo Rare Earth Resource Research and Comprehensive Utilization, Baotou Research Institute of Rare Earths, Baotou, China
  • Jun PENG School of Rare Earth Industry, Inner Mongolia University of Science and Technology, Baotou, China
  • Haitao GUO Baotou Rewin Rare Earth Metal Materials Co.,Ltd., Baotou, China

DOI:

https://doi.org/10.55713/jmmm.v36i3.2636

Keywords:

Rare-earth high-entropy alloy, HCP structure, Magnetic properties, Magnetocaloric effect

Abstract

In this study, a GdTbDyErPr rare-earth high-entropy alloy (RE HEA) was successfully synthesized and its magnetic properties and magnetocaloric effect (MCE) were systematically investigated. The results indicate that the as-cast GdTbDyErPr RE HEA exhibits a single-phase hexagonal close-packed (HCP) structure with lattice parameters of a = 3.609 Å and c = 5.734 Å. Based on large parameter Ω, high mixing entropy (ΔSmix), and small parameters δ and εi, it can be inferred that the GdTbDyErPr alloy forms a disordered solid solution. The GdTbDyErPr RE HEA undergoes a first-order magnetic transition near about 143 K. The parameters |∆ |, RC, and RCP are determined to be 6.8 J∙kg‒1K‒1, 352 J∙kg‒1 and 462 J∙kg‒1 for GdTbDyErPr RE HEA under 0 T to 5 T. The facile synthesizability and remarkable MCE of the GdTbDyErPr RE HEA position it as a promising candidate for magnetic cooling technology

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Published

2026-07-16

How to Cite

[1]
Y. LIU, L. GAO, J. PENG, and H. GUO, “Magnetocaloric effect of GdTbDyErPr rare-earth high-entropy alloy”, J Met Mater Miner, vol. 36, no. 3, p. e2636, Jul. 2026.

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