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A quantitative criterion for determining the order of magnetic phase transitions using the magnetocaloric effect

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TLDR
A model-independent parameter allows evaluating the order of phase transition without any subjective interpretations, as it is shown for different types of materials and for the Bean–Rodbell model.
Abstract
The ideal magnetocaloric material would lay at the borderline of a first-order and a second-order phase transition. Hence, it is crucial to unambiguously determine the order of phase transitions for both applied magnetocaloric research as well as the characterization of other phase change materials. Although Ehrenfest provided a conceptually simple definition of the order of a phase transition, the known techniques for its determination based on magnetic measurements either provide erroneous results for specific cases or require extensive data analysis that depends on subjective appreciations of qualitative features of the data. Here we report a quantitative fingerprint of first-order thermomagnetic phase transitions: the exponent n from field dependence of magnetic entropy change presents a maximum of n > 2 only for first-order thermomagnetic phase transitions. This model-independent parameter allows evaluating the order of phase transition without any subjective interpretations, as we show for different types of materials and for the Bean–Rodbell model. Magnetocaloric materials often perform best when their magnetic transitions are at the boundary between first- and second-order behavior. Here the authors propose a simple criterion to determine the order of a transition, which may accelerate future magnetocaloric material searches.

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Magnetic properties and promising magnetocaloric performances in the antiferromagnetic GdFe2Si2 compound

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Recent progress in the magnetic and cryogenic magnetocaloric properties of RE2TMTM’O6 double perovskite oxides

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References
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Phase-change materials for rewriteable data storage

TL;DR: This review looks at the unique property combination that characterizes phase-change materials, in particular the contrast between the amorphous and crystalline states, and the origin of the fast crystallization kinetics.
Journal ArticleDOI

Magnetic materials and devices for the 21st century: Stronger, lighter, and more energy efficient

TL;DR: Considering future bottlenecks in raw materials, options for the recycling of rare-earth intermetallics for hard magnets will be discussed and their potential impact on energy efficiency is discussed.
Book

The Magnetocaloric Effect and its Applications

TL;DR: In this paper, the phase transition region magnetocaloric properties of 3D metals and their alloys have been investigated, including magnetocoric effect in amorphous materials and rare earth elements.
Journal ArticleDOI

Phase change materials for thermal energy storage

TL;DR: In this article, the state of the art of phase change materials for thermal energy storage applications is reviewed and an insight into recent efforts to develop new phase change material with enhanced performance and safety.
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