材料科学
热膨胀
反铁磁性
凝聚态物理
磁制冷
合金
铁磁性
负热膨胀
大气温度范围
相变
转变温度
相(物质)
Laves相
磁场
热力学
冶金
金属间化合物
磁化
超导电性
物理
有机化学
化学
量子力学
作者
Qi Shen,Fengqi Zhang,Iulian Dugulan,Niels van Dijk,E. Brück
标识
DOI:10.1016/j.scriptamat.2023.115482
摘要
<p>In this work, the magnetocaloric effect and negative thermal expansion in melt-spun Fe<sub>2</sub>Hf<sub>0.83</sub>Ta<sub>0.17</sub> Laves phase alloys were studied. Compared to arc-melted alloys, which undergo a first-order magnetoelastic transition from the ferromagnetic to the antiferromagnetic phase, melt-spun alloys exhibit a second-order transition. For Fe<sub>2</sub>Hf<sub>0.83</sub>Ta<sub>0.17</sub> ribbons, we observed a large volumetric coefficient of negative thermal expansion of −19 × 10<sup>−6</sup> K<sup>−1</sup> over a wide temperature range of 197 – 297 K and a moderate adiabatic temperature change of 0.7 K at 290 K for a magnetic field change of 1.5 T. The magnetic field dependence of the transition temperature (dT<sub>t</sub>/dµ<sub>0</sub>H = 4.4 K/T) for the melt-spun alloy is about half that of the arc-melted alloy (8.6 K/T). The origin of second-order phase transition of the melt-spun alloy is attributed to the partially suppressed frustration effect, which is due to the atomic disorder introduced by the rapid solidification.</p>
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