Title :
Magnetocaloric and Critical Behaviors of
Heusler Alloys
Author :
Zhang, P. ; Phan, T.L. ; Duc, N.H. ; Dan, N.H. ; Yu, S.C.
Author_Institution :
Dept. of Phys., Chungbuk Nat. Univ., Cheongju, South Korea
Abstract :
This work presents the magnetocaloric effect (MCE) and critical behaviors of bulk Ni0.5Mn0.5-xSnx alloys (x=0.14 and 0.15) prepared by an arc-melting method. Under an external field of 50 kOe, we have observed the coexistence of the inverse MCE with a maximum magnetic entropy change (ΔSmax) of 1.39 J·kg-1·K-1 at 218 K (associated with the martensitic-austenitic transition), and normal MCE with a minimum magnetic entropy change (ΔSmin) of -4.97 J·kg-1·K-1 at 308 K (associated with the ferromagnetic-paramagnetic transition in the austenitic phase) in x=0.14 . Meanwhile, the magnetic entropy changes for x=0.15 keeps normal negative, with ΔSmin=-4.55 J·kg-1·K-1 at 315 K. Interestingly, the ferromagnetic-paramagnetic transition in the austenitic phases for both alloys is found to be second-order type. Having used the Arrott-Noakes method, the critical exponents obtained for x=0.14 are β = 0.451 and γ = 1.217, and for x=0.15 are β = 0.501 and γ = 0.963, which are close to those expected for the mean-field model (β = 0.5 and γ = 1). This reveals that a long-range-order ferromagnetic interaction dominates in the austenitic phase. A small deviation from the theoretical values, particularly for x=0.14, is assigned to magnetic inhomogeneity induced by the martensitic-austenitic transition.
Keywords :
critical exponents; entropy; exchange interactions (electron); ferromagnetic materials; ferromagnetic-paramagnetic transitions; long-range order; magnetocaloric effects; manganese alloys; melting; nickel alloys; paramagnetic materials; reverse martensitic transformations; tin alloys; Arrott-Noakes method; Heusler alloys; Ni0.5Mn0.5-xSnx; arc-melting method; critical exponents; critical properties; ferromagnetic-paramagnetic transition; inverse magnetocaloric effect; long-range-order ferromagnetic interaction; magnetic entropy change; magnetic inhomogeneity; magnetocaloric properties; martensitic-austenitic transition; mean-ήeld model; temperature 218 K; temperature 308 K; temperature 315 K; Entropy; Frequency modulation; Magnetic domains; Magnetic hysteresis; Magnetic properties; Magnetization; Metals; Critical exponents; Ni-Mn-Sn alloys; magnetocaloric effect;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2012.2205375