Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7988307 | Intermetallics | 2018 | 6 Pages |
Abstract
The crystal structure, and magnetic and magnetocaloric properties of rapidly solidified Ni0.895Cr0.105MnGe1.05 melt-spun ribbons is reported. The ribbon samples crystallize into a single-phase hexagonal Ni2In-type structure at room temperature. The as-quenched ribbons showed a second order magnetic transition at 192â¯Â±â¯1â¯Kâ¯at μoHâ¯=â¯5â¯mT. A magnetic-field-induced transition from an antiferromagnetic (AFM)-like to a ferromagnetic (FM) state of martensite structure was observed in annealed ribbons below the temperature of the martensitic transformation (TMâ¯â¼â¯245â¯Â±â¯1â¯K). The annealed ribbons undergo a first-order magnetostructural transition (MST) with a large maximum reversible magnetic entropy change of ÎSMâ¯=â¯16.1â¯Jâ¯kgâ1â¯Kâ1 (this is about a four-fold increase compared to the ÎSM observed for the bulk sample of the same nominal composition) and RCâ¯=â¯144â¯Jâ¯kgâ1 for μoÎHâ¯=â¯5â¯Tâ¯at temperature Tâ¯=â¯TMâ¯â¼â¯245â¯Â±â¯1â¯K. The increase in the ÎSM peak value leads to an improved RC compared to that of the bulk sample (122â¯Jâ¯kgâ1). The observed MCE and quasi-reversible character of ÎSM at the MST illustrates the potential of Ni0.895Cr0.105MnGe1.05 ribbons for magnetic cooling technology.
Related Topics
Physical Sciences and Engineering
Materials Science
Metals and Alloys
Authors
Anil Aryal, Abdiel Quetz, C.F. Sánchez-Valdés, P.J. Ibarra-Gaytán, Sudip Pandey, Igor Dubenko, J.L. Sánchez Llamazares, Shane Stadler, Naushad Ali,