| Article ID | Journal | Published Year | Pages | File Type | 
|---|---|---|---|---|
| 7987993 | Solid State Communications | 2018 | 4 Pages | 
Abstract
												The first order magneto-structural transition (Ttâ95 K) and magnetocaloric effect in MnNiGe0.9Ga0.1 are studied via powder x-ray diffraction and magnetization measurements. Temperature dependent x-ray diffraction measurements reveal that the magneto-structural transition remains incomplete down to 23 K, resulting in a coexistence of antiferromagnetic and ferromagnetic phases at low temperatures. The fraction of the high temperature Ni2In-type hexagonal ferromagnetic and low temperature TiNiSi-type orthorhombic antiferromagnetic phases is estimated to be â¼40% and â¼60%, respectively at 23 K. The ferromagnetic phase fraction increases with increasing field which is found to be in non-equilibrium state and gives rise to a weak re-entrant transition while warming under field-cooled condition. The material shows a large inverse magnetocaloric effect across the magneto-structural transition and a conventional magnetocaloric effect across the second order paramagnetic to ferromagnetic transition. The relative cooling power which characterizes the performance of a magnetic refrigerant material is found to be reasonably high compared to the other reported magnetocaloric alloys.
											Keywords
												
											Related Topics
												
													Physical Sciences and Engineering
													Materials Science
													Materials Science (General)
												
											Authors
												Pallab Bag, R. Nath, 
											