首页> 外文期刊>Journal of the American Chemical Society >DFT investigation of H-2 activation by [M(NHPnPr(3))(' S3 ')] (M = Ni, Pd). Insight into key factors relevant to the design of hydrogenase functional models
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DFT investigation of H-2 activation by [M(NHPnPr(3))(' S3 ')] (M = Ni, Pd). Insight into key factors relevant to the design of hydrogenase functional models

机译:DFT研究了[M(NHPnPr(3))('S3')](M = Ni,Pd)对H-2的活化作用。洞察与氢化酶功能模型设计相关的关键因素

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Density functional theory has been used to investigate the reaction between H-2 and [Ni(NHPnPr(3))('S3')] or [Pd(NHPnPr(3))('S3')], where 'S3' = bis(2-sulfanylphenyl)sulfide(2-), which are among the few synthetic complexes featuring a metal coordination environment similar to that observed in the [NiFe] hydrogenase active site and capable of catalyzing H-2 heterolytic cleavage. Results allowed us to unravel the reaction mechanism, which is consistent with an oxidative addition-hydrogen migration pathway for [Ni(NHPnPr(3))('S3')], whereas metathesis is also possible with [Pd(NHPnPr(3))('S3')]. Unexpectedly, H-2 binding and activation implies structural reorganization of the metal coordination environment. It turns out that the structural rearrangement in [Ni(NHPnPr(3))('S3')] and [Pd(NHPnPr(3))('S3')] can take place due to the peculiar structural features of the Ni and Pd ligands, explaining the remarkable catalytic properties. However, the structural reorganization is the most unfavorable step along the H-2 cleavage pathway (Delta G > 100 kJ mol(-1)), an observation that is relevant for the design and synthesis of novel biomimetic catalysts.
机译:密度泛函理论已用于研究H-2与[Ni(NHPnPr(3))('S3')]或[Pd(NHPnPr(3))('S3')]之间的反应,其中'S3'=双(2-硫烷基苯基)硫化物(2-),是少数几种具有金属配位环境的合成配合物,其与[NiFe]氢化酶活性位点观察到的金属配位环境相似,并且能够催化H-2杂化裂解。结果使我们能够阐明反应机理,这与[Ni(NHPnPr(3))('S3')]的氧化加氢迁移途径一致,而[Pd(NHPnPr(3))也可以进行复分解('S3')]。出乎意料的是,H-2的结合和活化意味着金属配位环境的结构重组。事实证明,[Ni(NHPnPr(3))('S3')]和[Pd(NHPnPr(3))('S3')]中的结构重排可能会由于Ni和Ni的独特结构特征而发生钯配体,说明了卓越的催化性能。但是,结构重组是沿H-2裂解途径(Delta G> 100 kJ mol(-1))最不利的一步,这一观察结果与新型仿生催化剂的设计和合成有关。

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