磁制冷
静水压力
流体静力平衡
磁铁
材料科学
大气温度范围
凝聚态物理
航程(航空)
热力学
复合材料
磁场
物理
磁化
量子力学
作者
Junchao Sheng,Jiawang Xu,Lei Xi,Shouyuan Xing,Shihao Li,Xucai Kan,Xinqi Zheng,He Huang,Lichen Wang,Yuyan Han,Shiming Zhou,Baogen Shen,Shouguo Wang
摘要
Solid-state refrigeration leveraging the magnetocaloric effect (MCE) presents a sustainable and energy-efficient alternative to traditional gas compression refrigeration technologies. However, the practical utility of most magnetocaloric materials is restricted by their narrow operational temperature window. In this work, a stable magnetocaloric effect across an ultrawide temperature range of 146–320 K was achieved in Hf0.85Ta0.15Fe2 magnet via the hydrostatic pressure manipulation. Furthermore, the underlying mechanism for the extended and stable MCEs under hydrostatic pressure has been revealed by magnetization measurements and first-principles calculations. The material systems characterized by strong spin–lattice coupling exhibit considerable potential for externally manipulated hybrid-field-tuned magnetic properties and magnetocaloric performance, providing a convenient and practical approach for advancing applications in magnetic refrigeration technologies.
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