Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8003103 | Journal of Alloys and Compounds | 2013 | 5 Pages |
Abstract
Bulk magnetization measurements (5-320 K; 0-8 T) reveal that below room temperature Mn0.9Ti0.1CoGe exhibits two magnetic phase transitions at â¼178 K and â¼280 K. Neutron diffraction measurements (3-350 K) confirm that the transition at â¼178 K is due to the structural change from the low-temperature orthorhombic TiNiSi-type structure (space group Pnma) to the higher temperature hexagonal Ni2In-type structure (space group P63/mmc), while the transition at â¼280 K originates from the transition from ferromagnetism to paramagnetism. The magnetocaloric behaviour of Mn0.9Ti0.1CoGe around Tstr â¼Â 178 K and TC â¼Â 280 K as determined via the magnetic field and temperature dependences of DC magnetisation are given by the maximum values of the magnetic entropy changes âÎSMmax = 6.6 J kgâ1 Kâ1 around Tstr â¼Â 178 K, and âÎSMmax = 4.2 J kgâ1 Kâ1 around TC â¼Â 280 K for a magnetic field change of ÎB = 0-8 T. Both structural entropy - due to the unit cell expansion of â¼4.04% - and magnetic entropy - due to an increase in the magnetic moment of â¼31% - are found to contribute significantly to the total entropy change around Tstr. Critical analysis of the transition around TC â¼Â 280 K leads to exponents similar to values derived from a mean field theory, consistent with long-range ferromagnetic interactions. It was found that the field dependence of âÎSMmax can be expressed as âÎSMmax â Bn with n = 1 for the structural transition around Tstr and n = 2/3 for the ferromagnetic transition around TC, thereby confirming the second order nature of this latter transition.
Related Topics
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Metals and Alloys
Authors
J.L. Wang, P. Shamba, W.D. Hutchison, M.F. Md Din, J.C. Debnath, M. Avdeev, R. Zeng, S.J. Kennedy, S.J. Campbell, S.X. Dou,