材料科学
磁制冷
磁滞
热力学
凝聚态物理
热滞后
低温
磁滞
冶金
复合材料
磁化
磁场
相变
量子力学
物理
作者
Timo Niehoff,Benedikt Beckmann,Konstantin Skokov,A. Herrero,A. Oleaga,Eduard Bykov,C. Salazar Mejía,M. Straßheim,Oliver Gutfleisch,J. Wosnitza,Tino Gottschall
标识
DOI:10.1002/adfm.202505704
摘要
Abstract The magnetocaloric effect (MCE) offers a promising alternative for environmentally friendly cooling technologies, particularly at cryogenic temperatures. However, overestimating material capabilities can lead to misguided research efforts and hinder technological progress. Metamagnetic materials undergoing a transition from an antiferromagnetic to a ferromagnetic state are often predicted to exhibit a strong inverse MCE at cryogenic temperatures based on magnetization measurements. This assumption is critically assessed here using Tb 3 Ni as a case study. By employing a simple model and comparing results across various measurement techniques, it is demonstrated that the predicted inverse MCE does not exist. Specific‐heat data reveal no evidence of this effect, while direct Δ T ad pulsed‐magnetic‐field measurements indicate significant heating caused by dissipative effects linked to hysteresis. Furthermore, total‐entropy calculations derived from magnetization data violate the second law of thermodynamics, clearly ruling out the existence of an inverse MCE. These findings underscore the necessity of complementary experimental approaches and a precise understanding of the transitions to accurately characterize magnetocaloric materials and identify suitable candidates for cryogenic magnetic refrigeration.
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