首页> 美国卫生研究院文献>Frontiers in Chemistry >Steric Switching From Photochemical to Thermal N2 Splitting: A Computational Analysis of the Isomerization Reaction {(Cp*)(Am)Mo}2(μ-η1:η1-N2) → {(Cp*)(Am)Mo}2(μ-N)2
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Steric Switching From Photochemical to Thermal N2 Splitting: A Computational Analysis of the Isomerization Reaction {(Cp*)(Am)Mo}2(μ-η1:η1-N2) → {(Cp*)(Am)Mo}2(μ-N)2

机译:从光化学到N2热分解的立体转换:异构化反应{(Cp *)(Am)Mo} 2(μ-η1:η1-N2)→{(Cp *)(Am)Mo} 2(μ)的计算分析-N)2

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摘要

A μ-η11-N2-bridged Mo dimer, {(η5-C5Me5)[N(Et)C(Ph)N(Et)]Mo}2(μ-N2), cleaves dinitrogen thermally resulting in a crystallographically characterized bis-μ-N-bridged dimer, {(η5-C5Me5)[N(Et)C(Ph)N(Et)]Mo}2(μ-N)2. A structurally related Mo dimer with a bulkier amidinate ligand, ([N(iPr)C(Me)N(iPr)]), is only capable of photochemical dinitrogen activation. These opposing reactivities were rationalized as steric switching between the thermally and photochemically active species. A computational analysis of the geometric and electronic structures of intermediates along the isomerization pathway from Mo2(μ-η11-N2) to Mo2(μ-η21-N2) and Mo2(μ-η22-N2), and finally Mo2(μ-N)2, is presented here. The extent to which dispersion affects the thermodynamics of the isomers is evaluated, and it is found that dispersion interactions play a significant role in stabilizing the product and making the reaction exergonic. The concept of steric switching is further explored with theoretical models with sterically even less demanding ligands, indicating that systematic ligand modifications could be used to rationally design the N2 activation energy landscape. An analysis of electronic excitations in the computed UV-vis spectra of the two complexes shows that a particular type of asymmetric excitations is only present in the photoactive complex.
机译:μ-η 1 :η 1 -N2桥接的Mo二聚体,{(η 5 -C5Me5)[N(Et)C( Ph)N(Et)] Mo} 2(μ-N2)热裂解二氮,形成晶体学表征的双-μ-N桥连二聚体,{(η 5 -C5Me5)[N( Et)C(Ph)N(Et)] Mo} 2(μ-N)2。与结构上相关的Mo二聚体,具有较大的mid酰胺配体([N( i Pr)C(Me)N( i Pr)]),仅能进行光化学二氮作用激活。这些相反的反应性被合理化为热和光化学活性物质之间的空间转换。从Mo2(μ-η 1 :η 1 -N2)到Mo2(μ-η 2 :η 1 -N2)和Mo2(μ-η 2 :η 2 -N2),最后是Mo2 (μ-N) 2 在此处显示。评价了分散体影响异构体的热力学的程度,并且发现分散体相互作用在稳定产物和使反应能进行中起重要作用。用理论上对配体要求甚至更低的理论模型进一步探索了空间转换的概念,这表明系统的配体修饰可用于合理设计N 2 活化能态势。在两个配合物的计算的UV-可见光谱中对电子激发的分析表明,特定类型的不对称激发仅存在于光活性配合物中。

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