4.6 Article

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

Journal

CRYSTALS
Volume 12, Issue 2, Pages -

Publisher

MDPI
DOI: 10.3390/cryst12020233

Keywords

magnetocaloric materials; manganese compounds; phase diagram; magnetic properties

Funding

  1. National Natural Science Foundation of China [11904188, 51961033, 52150610486]
  2. Inner Mongolia Autonomous Region [NJZY20025, NJYT-20-A17]
  3. Inner Mongolia Normal University [2018YJRC002, 2018YJRC003]

Ask authors/readers for more resources

This study explores the Mn(Fe, Ni)(Si, Al) series compounds and achieves a magneto-structural phase transition from ferromagnetic to paramagnetic phase in the range of 0.06 < x <= 0.08. The synthesis of high-quality samples using conventional methods is hindered by the decomposition of the compounds at intermediate temperatures.
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 MnFe0.6Ni0.4Si1-xAlx 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 Ni2In-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 degrees C, or quenched from 1100 degrees C) reveals that Mn(Fe,Ni)(Si,Al) samples decompose into a Mn5Si3-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 MnFe0.6Ni0.4Si1-xAlx compositions, this study paves the way toward the realization of a giant magnetocaloric effect in these compounds using alternative synthesis techniques.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.6
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available