Tunable magnetic and magnetocaloric properties by thermal annealing in ErCo2 atomized particles
Takafumi D. Yamamoto, Akiko T. Saito, Hiroyuki Takeya, Kensei, Terashima, Takenori Numazawa, Yoshihiko Takano

TL;DR
This study explores how thermal annealing affects the crystallographic, magnetic, and magnetocaloric properties of gas-atomized ErCo2 particles, demonstrating tunable magnetic transition temperatures and entropy changes for low-temperature refrigeration.
Contribution
It provides new insights into controlling magnetocaloric properties of ErCo2 particles through processing, highlighting the importance of magneto-structural coupling and annealing conditions.
Findings
Magnetic transition temperature increases from 34 to 56 K after atomization.
Thermal annealing restores the first-order phase transition.
Magnetic entropy change ranges from 9 to 33 J kg$^{-1}$ K$^{-1}$ depending on conditions.
Abstract
Processing magnetocaloric materials into magnetic refrigerants with appropriate shapes is essential for the development of magnetic refrigeration systems. In this context, the impact of processing on the physical properties of magnetocaloric materials is one of the important issues. Here, we investigate the crystallographic, magnetic, and magnetocaloric properties of gas-atomized particles of the intermetallic compound ErCo, a giant magnetocaloric material for low-temperature applications. The results demonstrate that the physical properties of ErCo are significantly changed by atomization and subsequent thermal annealing. In the as-atomized particles, the magnetic transition temperature increases from 34 to 56 K and the phase transition changes from first order to second order. The thermal annealing shifts the transition temperature back to the original one and restores the…
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