Enhanced magnetocaloric effect in rare-earth aluminum-based magnetic materials for hydrogen liquefaction

Lu Tian, Haobo Sun, Zhaojun Mo*, Xinqiang Gao, Zhenxing Li, Guodong Liu, Jun Shen*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Efficient magnetocaloric materials are essential for the liquefaction of hydrogen, a clean energy carrier that requires cryogenic temperatures. Traditional refrigeration methods for hydrogen liquefaction are energy-intensive, making the search for alternative technologies critical. This study explores the magnetocaloric properties of Er1-xHoxAl2 compounds, focusing on the effects of Ho doping. Using a combination of density functional theory calculations and experimental measurements, we systematically examine how Ho incorporation influences the electronic structure, magnetic properties, and magnetocaloric effect (MCE) of these materials. Our findings indicate that Ho doping effectively adjusts the Curie temperature to align closely with the hydrogen liquefaction point. Theoretical calculations reveal significant modifications in the electronic structure due to Ho doping, which enhance ferromagnetic interactions. Experimentally, Er0.8Ho0.2Al2 and Er0.6Ho0.4Al2 exhibit maximum magnetic entropy changes of 16.1 J/kg K and 14.7 J/kg K, under a magnetic field change of 0–2 T. The corresponding values for refrigeration capacity (RC) are 150.9 J/kg, and 183.6 J/kg, respectively. These results highlight the potential of Er1-xHoxAl2 compounds as efficient magnetocaloric materials for hydrogen liquefaction, offering substantial performance improvements under low magnetic fields.

Original languageEnglish
Pages (from-to)1205-1211
Number of pages7
JournalInternational Journal of Hydrogen Energy
Volume98
DOIs
Publication statusPublished - 13 Jan 2025

Keywords

  • Electronic structure
  • Hydrogen liquefaction
  • Low magnetic field
  • Magnetocaloric effect
  • Rare-earth compounds

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