Drastic Influence of Synthesis Conditions on Structural, Magnetic, and Magnetocaloric Properties of Mn(Fe,Ni)(Si,Al) Compounds

Journal Article (2022)
Author(s)

Balnude Nuendute (Inner Mongolia Normal University China)

H. Gai (Inner Mongolia Normal University China, TU Delft - RST/Fundamental Aspects of Materials and Energy)

Hargen Yibole (Inner Mongolia Normal University China)

Bao Tana (Inner Mongolia Normal University China)

Ojiyed Tegus (Inner Mongolia Normal University China)

Francois Guillou (Inner Mongolia Normal University China)

Research Group
RST/Fundamental Aspects of Materials and Energy
Copyright
© 2022 Balnude Nuendute, H. Gai, Hargen Yibole, Bao Tana, Ojiyed Tegus, Francois Guillou
DOI related publication
https://doi.org/10.3390/cryst12020233
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 Balnude Nuendute, H. Gai, Hargen Yibole, Bao Tana, Ojiyed Tegus, Francois Guillou
Research Group
RST/Fundamental Aspects of Materials and Energy
Issue number
2
Volume number
12
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Abstract

Mn compounds presenting magneto-structural phase transitions are currently intensively studied for their giant magnetocaloric effect; nevertheless, several parameters remain to be further optimized. Here, we explore the Mn(Fe,Ni)(Si,Al) series, which presents two advantages. The Mn content is fixed to unity ensuring a large saturation magnetization, and it is based on non-critical Si and Al elements instead of the more commonly employed Ge. Structural and magnetic properties of MnFe0.6 Ni0.4 Si1-x Alx compounds are investigated using powder X-ray diffraction, SEM, EDX, DSC, and magnetic measurements. We demonstrate that a magneto-structural coupling leading to transformation from ferromagnetic with orthorhombic TiNiSi-type structure to a paramagnetic hexagonal Ni2 In-type phase can be realized for 0.06 < x ≤ 0.08. Unfortunately, the first-order transition is relatively broad and incomplete, likely as the result of insufficient sample homogeneity. A comparison between samples synthesized in different conditions (as-cast, quenched from 900 C, or quenched from 1100 C) reveals that Mn(Fe,Ni)(Si,Al) samples decompose into a Mn5 Si3-type phase at intermediate temperatures, preventing the synthesis of high-quality samples by conventional methods such as arc-melting followed by solid-state reaction. By identifying promising MnFe0.6 Ni0.4 Si1-x Alx compositions, this study paves the way toward the realization of a giant magnetocaloric effect in these compounds using alternative synthesis techniques.

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