Devi Kavita, Gorantla Sai Manoj N V T, Mondal Kartik Chandra
Department of Chemistry, Indian Institute of Technology Madras, Chennai, India.
J Comput Chem. 2022 Apr 30;43(11):757-777. doi: 10.1002/jcc.26832. Epub 2022 Mar 15.
Binding of dinitrogen (N ) to a transition metal center (M) and followed by its activation under milder conditions is no longer impossible; rather, it is routinely studied in laboratories by transition metal complexes. In contrast, binding of N by main group elements has been a challenge for decades, until very recently, an exotic cAAC-borylene (cAAC = cyclic alkyl(amino) carbene) species showed similar binding affinity to kinetically inert and non-polar dinitrogen (N ) gas under ambient conditions. Since then, N binding by short lived borylene species has made a captivating news in different journals for its unusual features and future prospects. Herein, we carried out different types of DFT calculations, including EDA-NOCV analysis of the relevant cAAC-boron-dinitrogen complexes and their precursors, to shed light on the deeper insight of the bonding secret (EDA-NOCV = energy decomposition analysis coupled with natural orbital for chemical valence). The hidden bonding aspects have been uncovered and are presented in details. Additionally, similar calculations have been carried out in comparison with a selected stable dinitrogen bridged-diiron(I) complex. Singlet cAAC ligand is known to be an exotic stable species which, combined with the BAr group, produces an intermediate singlet electron-deficient (cAAC)(BAr) species possessing a high lying HOMO suitable for overlapping with the high lying π*-orbital of N via effective π-backdonation. The BN interaction energy has been compared with that of the FeN bond. Our thorough bonding analysis might answer the unasked questions of experimental chemists about how boron compounds could mimic the transition metal of dinitrogen binding and activation, uncovering hidden bonding aspects. Importantly, Pauling repulsion energy also plays a crucial role and decides the binding efficiency in terms of intrinsic interaction energy between the boron-center and the N ligand.
双氮(N₂)与过渡金属中心(M)结合并随后在较温和条件下被活化已不再是不可能的;相反,过渡金属配合物在实验室中对此进行常规研究。相比之下,主族元素与N₂的结合数十年来一直是个挑战,直到最近,一种奇特的环烷基(氨基)卡宾硼烯(cAAC = 环烷基(氨基)卡宾)物种在环境条件下对动力学惰性且非极性的双氮(N₂)气体表现出相似的结合亲和力。从那时起,短寿命硼烯物种与N₂的结合因其不寻常的特性和未来前景在不同期刊上成为引人注目的新闻。在此,我们进行了不同类型的密度泛函理论(DFT)计算,包括对相关的cAAC - 硼 - 双氮配合物及其前体的能量分解分析结合自然化学价轨道(EDA - NOCV分析),以深入了解键合奥秘(EDA - NOCV = 能量分解分析结合自然化学价轨道)。隐藏的键合方面已被揭示并详细呈现。此外,与选定的稳定双氮桥联二铁(I)配合物相比进行了类似计算。已知单线态cAAC配体是一种奇特的稳定物种,与BAr基团结合会产生一种中间的单线态缺电子(cAAC)(BAr)物种,其具有较高的最高占据分子轨道(HOMO),适合通过有效的π - 反馈与N₂的较高π*轨道重叠。已将BN相互作用能与FeN键的相互作用能进行了比较。我们全面的键合分析可能会回答实验化学家关于硼化合物如何能够模拟双氮结合和活化的过渡金属这一未被问及的问题,揭示隐藏的键合方面。重要的是,泡利排斥能也起着关键作用,并根据硼中心与N₂配体之间的内在相互作用能决定结合效率。