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Stability and Reversibility of Lithium Borohydrides Doped by Metal Halides and Hydrides

机译:金属卤化物和氢化物掺杂的硼氢化锂的稳定性和可逆性

摘要

In an effort to develop reversible metal borohydrides with high hydrogen storage capacities and low dehydriding temperature, doping LiBH4 with various metal halides and hydrides has been conducted. Several metal halides such as TiCl3, TiF3, and ZnF2 effectively reduced the dehydriding temperature through a cation exchange interaction. Some of the halide doped LiBH4 are partially reversible. The LiBH4 + 0.1TiF3 desorbed 3.5 wt % and 8.5 wt % hydrogen at 150 and 450 °C, respectively, with subsequent reabsorption of 6 wt % hydrogen at 500 °C and 70 bar observed. XRD and NMR analysis of the rehydrided samples confirmed the reformation of LiBH4. The existence of the (B12H12)−2 species in dehydrided and rehydrided samples gives insight into the resultant partial reversibility. A number of other halides, MgF2, MgCl2, CaCl2, SrCl2, and FeCl3, did not reduce the dehydriding temperature of LiBH4 significantly. XRD and TGA-RGA analyses indicated that an increasing proportion of halides such as TiCl3, TiF3, and ZnCl2 from 0.1 to 0.5 mol makes lithium borohydrides less stable and volatile. Although the less stable borohydrides such as LiBH4 + 0.5TiCl3, LiBH4 + 0.5TiF3, and LiBH4 + 0.5ZnCl2 release hydrogen at room temperature, they are not reversible due to unrecoverable boron loss caused by diborane emission. In most cases, doping that produced less stable borohydrides also reduced the reversible hydrogen uptake. It was also observed that halide doping changed the melting points and reduced air sensitivity of lithium borohydrides.
机译:为了开发具有高储氢容量和低脱水温度的可逆金属硼氢化物,已经进行了用各种金属卤化物和氢化物掺杂LiBH4。几种金属卤化物(例如TiCl3,TiF3和ZnF2)通过阳离子交换相互作用有效降低了脱水温度。某些卤化物掺杂的LiBH4是部分可逆的。 LiBH4 + 0.1TiF3分别在150和450°C时解吸了3.5 wt%的氢和8.5 wt%的氢,随后在500°C和70 bar下重新吸收了6 wt%的氢。再水合样品的XRD和NMR分析证实了LiBH4的重整。脱水和再水化样品中(B12H12)-2物种的存在使人们对由此产生的部分可逆性具有洞察力。许多其他卤化物MgF2,MgCl2,CaCl2,SrCl2和FeCl3并未显着降低LiBH4的脱水温度。 XRD和TGA-RGA分析表明,卤化物(如TiCl3,TiF3和ZnCl2)的比例从0.1摩尔增加到0.5摩尔会使硼氢化锂的稳定性和挥发性降低。尽管较不稳定的硼氢化物(如LiBH4 + 0.5TiCl3,LiBH4 + 0.5TiF3和LiBH4 + 0.5ZnCl2)在室温下释放氢,但由于乙硼烷释放引起的不可回收的硼损失,它们不可逆。在大多数情况下,掺杂产生的硼氢化物不稳定,这也会减少可逆的氢吸收。还观察到卤化物掺杂改变了硼氢化锂的熔点并降低了对空气的敏感性。

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