Title :
Martensitic Transitions and Magnetocaloric Properties in Mn
49–xCo
xNi
41Sn
10 (
–4) Rib
Author :
Shih, C.W. ; Yuan, J.H. ; Ma, S.C. ; Chang, H.W. ; Chang, W.C.
Author_Institution :
Dept. of Phys., Nat. Chung Cheng Univ., Chiayi, Taiwan
Abstract :
The effects of Co substitution for Mn on the phase constitutions, martensitic transition temperature TM, and the magnetocaloric properties of melt-spun Mn49-xCoxNi41Sn10 (x = 0-4) alloy ribbons have been investigated. A unique martensitic transformation (MT) from a ferromagnetic (FM) austenite to a weak-magnetic martensite phase was obtained, and magneticfield-induced reverse MT was confirmed in these ribbons. These ribbons crystallize in a cubic Heusler structure (L21) at room temperature. The martensitic structural transition temperature (TM) first decreases from 239.7 K for x = 0 to 237.5 K for x = 1.5 with increasing Co content. A further increase of Co content results in an increase to 251.6 K for x = 4. The peak value of positive magnetic entropy change (ASM) first decreases from 15.8 Jkg/K for x = 0 to 9.9 Jkg/K for x = 1.5, then increases to 11.5 for x = 4 in a magnetic field change 10 kOe. The phenomena are attributed to the change of exchange interactions in Co-substituted Mn-Ni-Sn ribbons due to the change of the FM behavior and the valence electron concentration electrons per atom.
Keywords :
cobalt alloys; crystallisation; exchange interactions (electron); magnetocaloric effects; manganese alloys; martensitic transformations; nickel alloys; tin alloys; Co substitution; Mn49-xCoxNi41Sn10; crystallization; cubic Heusler structure; exchange interactions; ferromagnetic austenite-weak-magnetic martensite phase transformation; magnetic entropy change; magnetocaloric properties; martensitic structural transition temperature; martensitic transitions; melt-spun alloy ribbons; phase constitutions; temperature 293 K to 298 K; valence electron concentration electrons; Magnetic field induced strain; Magnetization; Magnetometers; Manganese; Saturation magnetization; Temperature; Heusler alloy; magnetocaloric properties; melt-spun ribbon;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2015.2447519