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LITHIUM BOROHYDRIDE AS A HYDROGEN STORAGE MATERIAL:A REVIEW

机译:氢硼化锂作为储氢材料的研究进展

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The major obstacle in transition to the hydrogen economy is the problem of onboard hydrogen storage. Solid-state hydrogen storage is the safest and most efficient method for hydrogen storage. Most of the metal hydrides exhibit very large volumetric storage density but less than 5 wt % gravimetric hydrogen density. Light metals such as Al, B bind with four hydrogen atoms and form together with an alkali metal an ionic or partially covalent compound called complex hydride. LiBH_4 is a complex hydride with 18.5 mass % gravimetric hydrogen density and 121 kg/m3 volumetric hydrogen storage capacity. The desorption temperature of LiBH_4 is greater than 470℃, thus making it difficult to use for storage applications. In addition, the conditions for reversible reaction are unfavorable. Modification of thermodynamics of the hydrogenation and dehydrogenation reaction is possible by using additives which could destabilize LiBH_4 by stabilizing the dehydrogenated state. This could decrease the heat of reaction and reduce the desorption temperature at the same time, making the conditions for reversible reaction more optimum. Several additives which could destabilize LiBH_4 have been reviewed.
机译:向氢经济过渡的主要障碍是船上储氢问题。固态储氢是最安全,最有效的储氢方法。大多数金属氢化物表现出非常大的体积存储密度,但是小于5 wt%的重量氢密度。轻金属(例如Al,B)与四个氢原子结合,并与碱金属一起形成称为配合物氢化物的离子或部分共价化合物。 LiBH_4是具有18.5质量%重量氢密度和121 kg / m3体积氢存储容量的复合氢化物。 LiBH_4的解吸温度高于470℃,因此难以用于存储应用。另外,可逆反应的条件是不利的。通过使用可以通过稳定脱氢状态来使LiBH_4不稳定的添加剂,可以改变氢化和脱氢反应的热力学。这可以减少反应的热量并同时降低解吸温度,从而使可逆反应的条件更加优化。已经审查了几种可能使LiBH_4不稳定的添加剂。

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