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Impact of fast-solidification on all-d-metal NiCoMnTi based giant magnetocaloric Heusler compounds.

Authors :
Zhang, Fengqi
Wu, Ziying
Wang, Jianlin
Chen, Wenyu
Wu, Zhenduo
Chi, Xiang
Zhao, Chenglong
Eijt, Stephan
Schut, Henk
Bai, Xuedong
Ren, Yang
van Dijk, Niels
Brück, Ekkes
Source :
Acta Materialia. Feb2024, Vol. 265, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

Recently, the all- d -metal Ni(Co)MnTi based Heusler compounds are found to have a giant magnetocaloric effect (GMCE) near room temperature and manifest different functionalities like multicaloric effects, which can be employed for solid-state refrigeration. However, in comparison to other traditional Heusler compounds, the relatively large thermal hysteresis (ΔT hys) and moderately steep ferromagnetic phase transition provides limitations for real applications. Here, we present that fast solidification (suction casting) can sufficiently tailor the GMCE performance by modifying the microstructure. Compared with the arc-melted sample, the magnetic entropy change of the suction-casted sample shows a 67% improvement from 18.4 to 29.4 Jkg−1K−1 for a field change (∆ μ 0 H) of 5 T. As the thermal hysteresis has maintained a low Δ T hys value (5.5 K) for the enhanced first-order phase transition, a very competitive reversible magnetic entropy change of 21.8 Jkg−1K−1 for ∆ μ 0 H = 5 T is obtained. Combining high-resolution transmission electron microscopy (HRTEM) and positron annihilation spectroscopy (PAS) results, the difference in lattice defect concentration is found to be responsible for the significant improvement in GMCE for the suction-cast sample, which suggests that defect engineering can be applied to control the GMCE. Our study reveals that fast solidification can effectively regulate the magnetocaloric properties of all- d -metal NiCoMnTi Heusler compounds without sacrificing Δ T hys. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13596454
Volume :
265
Database :
Academic Search Index
Journal :
Acta Materialia
Publication Type :
Academic Journal
Accession number :
174916184
Full Text :
https://doi.org/10.1016/j.actamat.2023.119595