Please use this identifier to cite or link to this item: http://hdl.handle.net/2445/191525
Title: Magnetic and structural entropy contributions to the multicaloric effects in Ni-Mn-Ga-Cu
Author: Gràcia-Condal, Adrià
Planes Vila, Antoni
Mañosa, Lluís
Wei, Zhiyang
Guo, Jianping
Soto-Parra, Daniel E.
Liu, Jian
Keywords: Ciència dels materials
Camps magnètics
Propietats magnètiques
Materials science
Magnetic fields
Magnetic properties
Issue Date: 23-Aug-2022
Publisher: American Physical Society
Abstract: We have studied the multicaloric properties of a Ni-Mn-Ga-Cu alloy. In this alloy, application of magnetic field and uniaxial stress shift its martensitic transition towards higher temperatures which results in synergic magnetocaloric and elastocaloric effects. By a proper numerical treatment of the calorimetric curves obtained under applied magnetic field and uniaxial stress we have obtained the entropy S(T,μ0H,σ) as a function of the magnetic field, uniaxial stress, and temperature over the whole phase space under study. We have determined the different entropy contributions to the multicaloric effect in this alloy, and noticeably we have evidenced the role played by the interplay between magnetic and vibrational degrees of freedom. A comparison between single caloric and multicaloric effects shows that appropriate combinations of magnetic field and stress reduce the magnitude of the specific field required to obtain a given value of the isothermal entropy and adiabatic temperature changes. For example, at 299 K, to achieve an entropy change (ΔS) of −14 J kg−1K−1, a magnetic field of ∼2.5 T or a uniaxial stress of 19 MPa are required, while a combination of dual fields of (1 T, 12 MPa) yields to the same value of ΔS. Moreover, the maximum adiabatic temperature change is enlarged up to 9.4 K by the dual fields, higher than the value obtained by a single field (∼7 K). The advantage of multicaloric effect is particularly relevant at low magnetic fields which are achievable by permanent magnets. Our findings open new avenues for using multicaloric materials in novel refrigeration technologies.
Note: Reproducció del document publicat a: https://doi.org/10.1103/PhysRevMaterials.6.084403
It is part of: Physical Review Materials, 2022, vol. 6, p. 1-8
URI: http://hdl.handle.net/2445/191525
Related resource: https://doi.org/10.1103/PhysRevMaterials.6.084403
ISSN: 2475-9953
Appears in Collections:Articles publicats en revistes (Física de la Matèria Condensada)

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