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Kinetic Modification on Hydrogen Desorption of Lithium Hydride and Magnesium Amide System

机译:氢化锂和酰胺镁体系氢解吸的动力学改性

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摘要

Various synthesis and rehydrogenation processes of lithium hydride (LiH) and magnesium amide (Mg(NH2)2) system with 8:3 molar ratio are investigated to understand the kinetic factors and effectively utilize the essential hydrogen desorption properties. For the hydrogen desorption with a solid-solid reaction, it is expected that the kinetic properties become worse by the sintering and phase separation. In fact, it is experimentally found that the low crystalline size and the close contact of LiH and Mg(NH2)2 lead to the fast hydrogen desorption. To preserve the potential hydrogen desorption properties, thermochemical and mechanochemical rehydrogenation processes are investigated. Although the only thermochemical process results in slowing the reaction rate due to the crystallization, the ball-milling can recover the original hydrogen desorption properties. Furthermore, the mechanochemical process at 150 °C is useful as the rehydrogenation technique to preserve the suitable crystalline size and mixing state of the reactants. As a result, it is demonstrated that the 8LiH and 3Mg(NH2)2 system is recognized as the potential hydrogen storage material to desorb more than 5.5 mass% of H2 at 150 °C.
机译:研究了摩尔比为8:3的氢化锂(LiH)和酰胺化镁(Mg(NH2)2)系统的各种合成和再氢化过程,以了解动力学因素并有效利用必要的氢解吸性能。对于通过固-固反应进行的氢解吸,预计通过烧结和相分离,动力学性能变差。实际上,通过实验发现,低的晶体尺寸以及LiH和Mg(NH2)2的紧密接触会导致氢的快速解吸。为了保留潜在的氢解吸性能,对热化学和机械化学的再氢化过程进行了研究。尽管唯一的热化学过程会由于结晶而导致反应速度减慢,但球磨可以恢复原始的氢解吸性能。此外,在150℃下的机械化学过程可用作再氢化技术,以保持合适的晶体尺寸和反应物的混合状态。结果证明,在150℃下,认为8LiH和3Mg(NH 2)2体系是解吸大于5.5质量%的H 2的潜在储氢材料。

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