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Mechanistic studies of ammonia borane dehydrogenation

机译:氨硼烷脱氢机理的研究

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Ammonia borane (NH_3BH_3, AB) has received extensive attention as a potential hydrogen storage medium, however hydrogen release mechanisms from AB are not well understood. AB follows different reaction routes if the dehydrogenation occurs in solvent or solid state, but a comparative study for AB dehydrogenation in these two states is not available. In this work, a detailed study of AB dehydrogenation mechanism in diglyme and solid state is presented, and a comprehensive reaction network for both cases is proposed. The experimental and DFT results suggest that two main reaction pathways occur; one involves cyclization of monomers which results in faster dehydrogenation at lower temperature, while the other involves propagation to acyclic intermediates which requires higher temperature to carry out the cyclization step. AB dehydrogenation in solid state was experimentally found to be initiated by B-N bond cleavage and not by direct dehydrogenation, which agrees with high level CCSD(T)/MP2 calculations reported previously. It was found that diglyme plays a significant role in hindering B-N bond cleavage of AB which facilitates the cyclization pathway. In solid state, experiments including labeled AB (ND_3BH_3) mapped out the source of hydrogen (from hydridic or protonic ends), and a clear difference in the degree of dehydrogenation from the two ends is demonstrated.
机译:氨硼烷(NH_3BH_3,AB)作为潜在的储氢介质已受到广泛关注,但是从AB释放氢的机理尚未得到很好的理解。如果脱氢发生在溶剂或固体状态,AB遵循不同的反应路线,但是在这两种状态下AB脱氢的比较研究尚不可用。在这项工作中,对二甘醇二甲醚和固态AB脱氢机理进行了详细研究,并提出了两种情况下的综合反应网络。实验结果和DFT结果表明存在两种主要的反应途径。一种涉及单体的环化,这导致在较低温度下更快的脱氢,而另一种涉及向无环中间体的扩散,这需要更高的温度来进行环化步骤。实验上发现,固态AB脱氢是通过B-N键断裂而不是直接脱氢引发的,这与以前报道的高水平CCSD(T)/ MP2计算相符。发现二甘醇二甲醚在阻碍AB的B-N键裂解中起重要作用,AB促进了环化途径。在固态状态下,实验证明了包括标记的AB(ND_3BH_3)绘制了氢的来源(从氢或质子端开始),并且证明了氢从两个末端的脱氢程度存在明显差异。

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