Title :
Martensitic Transformation and Magnetocaloric Effect of Ni45−xCo5Mn40+xSn10 Alloys
Author :
Zhengang Guo ; Chengyue Xiong ; Liqing Pan
Author_Institution :
Beijing Nat. Center for Electron Microscopy, Tsinghua Univ., Beijing, China
Abstract :
The structural, magnetic, and martensitic transition properties of Ni45-xCo5Mn40+xSn10 ($x=2$ , 4, 6, and 8) alloys are investigated systematically. X-ray diffraction reveals that the alloys mainly exhibit a tetragonal phase at room temperature, but also a small amount of impurity phase when the Mn content is >46%. The temperature dependence of magnetization indicates that there are two different magnetic transitions in the alloys, the Curie transition and the martensitic transition. With the substitution of Mn for Ni, the Curie temperature of alloys remains almost unchanged, while the martensitic transition temperature decreases, which is attributed to the decrease in the valence electrons concentration. In particular, the strong coupling between magnetism and structure occurs in Ni45-xCo5Mn40+xSn10 alloys, and the Ni43Co5Mn42Sn10 alloy exhibits a large magnetic entropy change of 30.6 Jkg-1K-1 at a field change of 3 T in martensitic transition, making it a good candidate for magnetic refrigeration materials.
Keywords :
Curie temperature; X-ray diffraction; cobalt alloys; crystal structure; entropy; magnetisation; magnetocaloric effects; manganese alloys; martensitic transformations; nickel alloys; tin alloys; Curie transition; Ni45-xCo5Mn40+xSn10; X-ray diffraction; impurity phase; magnetic entropy change; magnetic flux density 3 T; magnetic properties; magnetic refrigeration materials; magnetic transitions; magnetization; magnetocaloric effect; martensitic transition properties; martensitic transition temperature; structural properties; temperature dependence; tetragonal phase; valence electrons concentration; Magnetic anisotropy; Magnetic hysteresis; Magnetization; Magnetoelectric effects; Manganese; Temperature; Magnetic properties; Martensitic transition; magnetic properties; magnetocaloric; martensitic transition;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2015.2441296