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Coupling Phenomena in Magnetocaloric Materials

机译:磁热材料中的耦合现象

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摘要

Strong coupling effects in magnetocaloric materials are the key factor to achieve a large magnetic entropy change. Combining insights from experiments and ab initio calculations, we review relevant coupling phenomena, including atomic coupling, stress coupling, and magnetostatic coupling. For the investigations on atomic coupling, we have used Heusler compounds as a flexible model system. Stress coupling occurs in first-order magnetocaloric materials, which exhibit a structural transformation or volume change together with the magnetic transition. Magnetostatic coupling has been experimentally demonstrated in magnetocaloric particles and fragment ensembles. Based on the achieved insights, we have demonstrated that the materials properties can be tailored to achieve optimized magnetocaloric performance for cooling applications.
机译:磁热材料中的强耦合效果是实现大磁熵变化的关键因素。 结合实验和AB Initio计算的见解,我们审查了相关耦合现象,包括原子耦合,应力耦合和静磁耦合。 对于原子偶联的调查,我们将Heusler化合物用作灵活的模型系统。 在一流的磁热质材料中发生应力耦合,其表现出结构变换或体积变化以及磁性转变。 在磁热粒子和片段合奏中已经实验证明了磁力耦合。 基于实现的见解,我们已经证明了材料特性可以根据冷却应用实现优化的磁热性能。

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