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A comparative theoretical study of the hydride transfer mechanisms during LiAlH4 and LiBH4 reductions

机译:LiAlH4和LiBH4还原过程中氢化物转移机理的比较理论研究

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This work examined the hydride transfer processes during the reduction of formaldehyde by LiAlH4 or LiBH4, including investigations of the geometries, solvent effects and charge transfer processes along the reaction coordinate, using density functional theory (DFT). The energy and geometry results demonstrate that the transition state (TS) structure for the LiAlH4-formaldehyde complex is reactant-like, while the structure generated by LiBH4 has a product-like geometry, consistent with the Hammond postulate. From a charge density analysis, we also found that both complexes undergo the same essential hydride transfer mechanism, which consists of: (1) single electron transfer to the carbonyl carbon, (2) formation of a bridge bond (X-H-C; X = Al or B) and (3) hydrogen transfer driven by electron transfer. Subsequently, in a fourth step, a single electron flows through the X-H-C bond during transfer of the hydrogen, such that hydrogen atom or proton-coupled electron transfer occurs. In both systems, the presence of tetrahydrofuran as a solvent affects the structure and energy values during the reaction, but not the charge transfer characteristics. We propose that the rate-determining steps during hydride transfer when employing LiAlH4 and LiBH4 are one electron transfer to the carbonyl carbon and B-H bond dissociation, respectively. (C) 2015 Elsevier B.V. All rights reserved.
机译:这项工作使用密度泛函理论(DFT)研究了LiAlH4或LiBH4还原甲醛过程中的氢化物转移过程,包括研究几何形状,溶剂效应以及沿着反应坐标的电荷转移过程。能量和几何结果表明,LiAlH4-甲醛配合物的过渡态(TS)结构呈反应物状,而LiBH4生成的结构具有类似于Hammond假设的产物状几何形状。从电荷密度分析中,我们还发现两种络合物都具有相同的氢化物转移机理,该机理包括:(1)单电子转移至羰基碳,(2)形成桥键(XHC; X = Al或B)和(3)由电子转移驱动的氢转移。随后,在第四步骤中,单个电子在氢的转移过程中流过X-H-C键,从而发生氢原子或质子偶联的电子转移。在两个系统中,四氢呋喃作为溶剂的存在都会影响反应过程中的结构和能量值,但不会影响电荷转移特性。我们提出,当使用LiAlH4和LiBH4进行氢化物转移时,决定速率的步骤分别是一个电子转移到羰基碳和B-H键解离。 (C)2015 Elsevier B.V.保留所有权利。

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