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LiBH₄ - NaBH₄ - KBH₄体系的相图。

Phase diagrams of the LiBH-NaBH-KBH system.

作者信息

Dematteis Erika M, Pinatel Eugenio R, Corno Marta, Jensen Torben R, Baricco Marcello

机构信息

Department of Chemistry and Inter-departmental Center Nanostructured Interfaces and Surfaces (NIS), University of Turin, Via Pietro Giuria 7, 10125 Torino, Italy.

出版信息

Phys Chem Chem Phys. 2017 Sep 20;19(36):25071-25079. doi: 10.1039/c7cp03816j.

Abstract

A combination of experimental and computational techniques has been used to fully describe the thermodynamic properties and phase diagrams of the LiBH-NaBH-KBH system. The Calphad method was used to assess the thermodynamic properties of LiBH-NaBH, LiBH-KBH, and NaBH-KBH binary systems and to extend the investigation to the LiBH-NaBH-KBH ternary system. Samples with various compositions in the ternary system were synthesised, both by ball milling and manual mixing of the parent borohydrides, and their thermal stability has been studied using in situ synchrotron radiation X-ray diffraction as a function of temperature and using differential scanning calorimetry. From collected experimental and literature data, a thermodynamic assessment of the ternary system led to the determination of the phase diagrams. In all cases, the solid solutions can be described in the frame of the regular solution model, with interaction parameters positive or equal to zero (i.e. ideal solution). In contrast, the liquid phase was described using negative interaction parameters. A new ternary eutectic composition was estimated and it was confirmed experimentally to be equal to a molar fraction of 0.66LiBH-0.11NaBH-0.23KBH with a melting temperature of 102 °C.

摘要

实验技术和计算技术相结合,已被用于全面描述LiBH-NaBH-KBH体系的热力学性质和相图。采用相图计算(Calphad)方法评估LiBH-NaBH、LiBH-KBH和NaBH-KBH二元体系的热力学性质,并将研究扩展到LiBH-NaBH-KBH三元体系。通过球磨和手动混合母体硼氢化物,合成了三元体系中具有各种组成的样品,并使用原位同步辐射X射线衍射作为温度的函数以及差示扫描量热法研究了它们的热稳定性。根据收集到的实验数据和文献数据,对三元体系进行了热力学评估,从而确定了相图。在所有情况下,固溶体都可以在正规溶液模型的框架内进行描述,其相互作用参数为正或等于零(即理想溶液)。相比之下,液相则使用负相互作用参数进行描述。估计了一种新的三元共晶组成,并通过实验证实其等于摩尔分数为0.66LiBH-0.11NaBH-0.23KBH,熔化温度为102℃。

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