论文标题

正叉酸TBVO4单晶的磁化效应的巨型各向异性

Giant anisotropy of the magnetocaloric effect in the orthovanadate TbVO4 single crystals

论文作者

Balli, Mohamed, Mansouri, Sabeur, Dimitrov, Dimitre Z., Fournier, Patrick, Jandl, Serge, Juang, Jenh-Yih

论文摘要

众所周知,锆石型矫正板RVO4在许多不同的应用中表现出有望作为催化剂和光学材料。在这项工作中,我们证明TBVO4化合物还可以用作有效且环保的冷冻冷却器中的磁制冷剂,因为其在低温方向上的强磁效应很强。沿易于磁化轴(a)的相对较低的磁场的应用可导致4 K处的最大熵变化约为20 j/kg k。更有趣的是,在足够高的磁场下,等温熵变化-ΔST变化-ΔST在宽的温度范围内保持大致恒定,从实用的角度来看,这是高度理解的。在7 T的磁场变化中,达到大约22 j/kg K的-ΔST实际上保持在0到34 k之间,导致出现的制冷剂容量约为823 J/kg。另一方面,如拉曼散射数据所证实的,从四角形到骨质结构的降低至接近33 K的正骨结构导致强烈的磁各向异性。因此,也可以通过在恒定磁场中的硬和易于方向之间简单地旋转TBVO4单晶体而获得强大的热效应,而不是标准的磁化磁化过程。这种旋转的磁电效应将在新一代紧凑和简化的磁性冰箱中实施TBVO4为可以致力于氢和氦的液化。

It is known that the Zircon-type orthovanadates RVO4 show promise in many different applications as catalysts and optical materials. In this work, we demonstrate that the TbVO4 compound can be also used as magnetic refrigerant in efficient and ecofriendly cryocoolers due to its strong magnetocaloric effect at low temperature regime. The application of a relatively low magnetic field of 2 T along the easy magnetization axis (a) gives rise to a maximum entropy change of about 20 J/kg K at 4 K. More interestingly, under sufficiently high magnetic fields, the isothermal entropy change -ΔST remains approximately constant over a wide temperature range which is highly appreciated from a practical point of view. In the magnetic field change of 7 T, -ΔST that reaches roughly 22 J/kg K remains practically unchanged between 0 and 34 K leading to an outstanding refrigerant capacity of about 823 J/kg. On the other hand, the lowering of crystallographic symmetry from the tetragonal to the orthorhombic structure occurring close to 33 K as confirmed by Raman scattering data results in a strong magnetic anisotropy. Accordingly, strong thermal effects can be also obtained simply by spinning the TbVO4 single crystals between their hard and easy orientations in constant magnetic fields instead the standard magnetization-demagnetization process. Such rotating magnetocaloric effects would open the way for the implementation of TbVO4 in a new generation of compact and simplified magnetic refrigerators that can be dedicated to the liquefaction of hydrogen and helium.

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