Tunable magnetoelastic transition and enhanced magnetocaloric response in Hf0.82Ta0.18Fe2 Laves phase alloys by Fe(6h)-site manipulation

Journal Article (2026)
Author(s)

Q. Shen (TU Delft - RST/Fundamental Aspects of Materials and Energy, Hangzhou Dianzi University)

Floris van Rooij (Student TU Delft)

Zeyu Zhang (Hangzhou Dianzi University)

Weixiang Hao (Hangzhou Dianzi University)

A.I. Dugulan (TU Delft - RST/Fundamental Aspects of Materials and Energy, TU Delft - RID/TS/Instrumenten groep)

N.H. van Dijk (TU Delft - RST/Fundamental Aspects of Materials and Energy)

E.H. Brück (TU Delft - RST/Fundamental Aspects of Materials and Energy)

Lingwei Li (Hangzhou Dianzi University)

Research Group
RST/Fundamental Aspects of Materials and Energy
DOI related publication
https://doi.org/10.1016/j.jmst.2025.08.015
More Info
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Publication Year
2026
Language
English
Research Group
RST/Fundamental Aspects of Materials and Energy
Volume number
254
Pages (from-to)
196-205
Reuse Rights

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Abstract

We herein provide a combined experimental investigation and theoretical calculations on the impact of Mn doping and Fe off-stoichiometry on the magnetoelastic transition and the magnetocaloric properties of Laves phase Hf0.82Ta0.18Fe2 alloys. Mn substitution led to an increase in unit-cell volume while Fe vacancies induced lattice contraction. By adjusting the Mn and Fe content, we achieved a table-like magnetocaloric response with a magnetic entropy change of 1.7–2.2 J/(kg K) at a magnetic field change of 2 T over a wide temperature range from 190 to 260 K. Mössbauer spectroscopy, neutron powder diffraction and density functional theory calculations all reveal that both Mn atoms and Fe vacancies preferentially occupy the 6h crystallographic site of the lattice structure with space group P63/mmc, and that the shortest intralayer Fe-6h interatomic distance governs the magnetoelastic transition in (Hf, Ta)Fe2 Laves phases. The tunable magnetic transition is ascribed to the slight change of the electronic state of the Fe-6h site and limited hybridization between Mn and Fe atoms. These findings offer new insight into the site-specific control for optimizing the magnetocaloric properties of Fe-based Laves phase alloys and inspire the design of other promising magnetocaloric materials with magnetoelastic transitions.

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