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Influence of negative lattice expansion and metamagnetic transition on magnetic entropy change in the compound LaFe11.4Si1.6

Applied Physics Letters · 2001 · Vol. 78(23) · pp. 3675–3677
Fengxia HuBaogen ShenJirong SunZhao‐Hua ChengGuanghui RaoXixiang Zhang

Abstract

Magnetization of the compound LaFe11.4Si1.6 with the cubic NaZn13-type structure was measured as functions of temperature and magnetic field around its Curie temperature TC of ∼208 K. It is found that the magnetic phase transition at TC is completely reversible. Magnetic entropy change ΔS, allowing one to estimate the magnetocaloric effect, was determined based on the thermodynamic Maxwell relation. The achieved magnitude of |ΔS| reaches 19.4 J/kg K under a field of 5 T, which exceeds that of most other materials involving a reversible magnetic transition in the corresponding temperature range. The large entropy change is ascribed to the sharp change of magnetization, which is caused by a large negative lattice expansion at the TC. An asymmetrical broadening of |ΔS| peak with increasing field was observed, which is resulted from the field-induced itinerant-electron metamagnetic transition from the paramagnetic to ferromagnetic state above the TC.

Magnetic and transport properties of perovskites and related materialsRare-earth and actinide compoundsMagnetic Properties of AlloysMagnetic refrigerationCondensed matter physicsCurie temperatureFerromagnetismMagnetizationMetamagnetismParamagnetismMagnetic fieldMaxwell relationsMaterials science
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References
Magnetocaloric effect and magnetic refrigeration
Journal of Magnetism and Magnetic Materials · 1999 · 1,578 citations
Magnetocaloric effect in superparamagnets
Journal of Magnetism and Magnetic Materials · 1992 · 502 citations
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Influence of negative lattice expansion and metamagnetic transition on magnetic entropy change in the compound LaFe11.4Si1.6 · Scinovex