首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Correlation between structural stability of LiBH4 and cation electronegativity in metal borides: an experimental insight for catalyst design
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Correlation between structural stability of LiBH4 and cation electronegativity in metal borides: an experimental insight for catalyst design

机译:金属硼化物中LibH4结构稳定性与阳离子电负性的相关性:催化剂设计的实验性见解

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摘要

Nanosized metal borides MBx (M = Mg, Ti, Fe, Si) are found to play an important role in enhancing the hydrogen storage performance of LiBH4 in this work. The hydrogen storage behavior and mechanism of these modified systems are investigated through TPD-MS, XRD, FTIR and SEM characterization methods. By introducing these metal borides into LiBH4 through ball milling, the systems display three dehydrogenation stages disclosing their similarity and distinction. The 1(st) stage starts at 190 degrees C, the 2(nd) stage ranges from 280 degrees C to 400 degrees C and the 3(rd) stage ends at 550 degrees C with a peak at round 440 degrees C similar to that of pristine LiBH4. Distinguishing features exist at the 2(nd) stage revealing the effectiveness of MBx in an order of MgB2 TiB2 FeB SiB4. Significantly, reversibility up to 9.7 wt% is achieved from LiBH4 with assistance of SiB4. The catalytic effect of MBx is influenced by the Pauling electronegativity of M in MBx and the interfacial contact characteristic between LiBH4 and MBx. The larger electronegativity leads to an enhanced catalytic effect and consequently lower temperature at the major stage. In contrast to the components in the solid state, the molten LiBH4 promotes a catalytic effect due to a superior interfacial contact. These results provide an insight into designing high-performance catalysts applied to LiBH4 as a hydrogen storage material.
机译:纳米尺寸的金属硼化物MBX(M =镁,钛,铁,硅)被发现在该工作增强的LiBH 4的储氢性能发挥了重要作用。通过TPD-MS,XRD,FTIR和SEM表征方法研究了这些改性系统的储氢行为和机制。通过将这些金属硼化物引入LibH4通过球磨,系统显示出透露其相似性和区别的三个脱氢级。 1(ST)阶段开始于190℃,2(第二)级的范围从280摄氏度到400摄氏度,并在550℃下具有峰3(RD)阶段结束在圆440摄氏度类似于原始Libh4。区分特征存在于2(ND)阶段,揭示MBX以MGB2&lt的顺序的有效性。 tib2& 2月& SIB4。显着地,在SIB4的帮助下,从LIBH4实现高达9.7wt%的可逆性。 MBX的催化效果是由M的MBX的鲍林电负性和LiBH 4,而MBX之间的界面接触特性的影响。较大的电控导致增强的催化效果,并因此在主要阶段降低温度。与固态中的组分相比,由于优异的界面接触,熔融的LiBH4促进催化效果。这些结果提供了在将施加到LiBH4的高性能催化剂设计为储氢材料的洞察。

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