反铁磁TbFe2Al10化合物的反转磁热效应

Ruoshui Liu, Jun Liu, Lichen Wang, Xiang Yu, Chenhui Lv, Zhengrui Li, Yan Mi, Lifeng Liu, Shuli He
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摘要

磁热效应(MCE)技术被认为是最重要的基本热力学效应之一,以其高能效和生态友好的特点在制冷领域发挥着重要作用。后地低温磁制冷剂具有广阔的应用前景。低成本和高加工性对其在制冷机中的应用至关重要。本文采用电弧熔炼和长时间退火法制备了纯相TbFe2Al10。研究了TbFe2Al10化合物的磁性能和磁热效应(MCE)。测定其为反铁磁性,尼尔温度TN =18 K。在临界外加磁场为0.95 T和1.89 T的条件下,5 K发生了从反铁磁态(AFM)到铁磁态(FIM)和从铁磁态到铁磁态(FM)的两次变磁跃迁。磁场变化产生了较大的磁阻效应,但未观察到磁滞损耗。在0-5 T和0-7 T的磁场变化中,磁熵变化最大值(ΔS)分别为-4.5 J/kg K和-6.7 J/kg K。TbFe2Al10具有较大的ΔS且无迟滞损耗和较低的稀土(Tb)含量,是低温磁性制冷剂的理想选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reversal Magnetocaloric Effect in the Antiferromagnetic TbFe2Al10 Compound
Magnetocaloric effect (MCE) technology is considered as one of the most important fundamental thermodynamic effects, and plays an important role in the refrigeration area for its high energy-efficiency and eco-friendly characteristics. Rear earth based low temperature magnetic refrigerant shows broad application prospect in the future. Low cost and high processability are so important to the application in the refrigeration machine. In this paper, pure phase TbFe2Al10 was prepared by arc melting and long-time annealing process. The magnetic properties and magnetocaloric effect (MCE) of the TbFe2Al10 compound were intensively studied. It was determined to be antiferromagnetic with the Neel temperature TN =18 K. Two metamagnetic transitions from antiferromagnetic (AFM) to ferrimagnetic (FIM) and ferrimagnetic to ferromagnetic (FM) state occurred at 5 K under a crucial applied magnetic field of 0.95 T and 1.89 T, respectively. Field variation generated a large MCE and no magnetic hysteresis loss was observed. The maximum values of magnetic entropy change (ΔS) were found to be -4.5 J/kg K and –6.7 J/kg K for the field changes of 0-5 T and 0-7 T, respectively. The large ΔS with no hysteresis loss as well as low proportion of rare earth (Tb) in crude materials make TbFe2Al10 a competitive candidate as low temperature magnetic refrigerant.
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