Juvanteny Adrià, Souilah Charafa, Quintero Raquel, García-Bellido Carlos, Pagès-Vilà Neus, Corona Teresa, Salvador Pedro, Company Anna
Institut de Química Computacional i Catàlisi (IQCC), Departament de Química, Universitat de Girona, C/Maria Aurèlia Capmany 69, Girona 17003, Spain.
Fachbereich Chemie, Philipps-Universitat Marburg, Hans-Meerwein-Str. 4, Marburg DE 35032, Germany.
Inorg Chem. 2024 Aug 5;63(31):14325-14334. doi: 10.1021/acs.inorgchem.4c00360. Epub 2024 Jul 23.
The oxidation of hydrocarbons is an important chemical transformation with relevance to biology and industry. Ni-catalyzed transformations are more scarce compared to Mn or Fe but have gained attention in recent years, affording efficient oxidations. Understanding the mechanism of action of these catalysts, including the detection and characterization of the active nickel-oxygen species, is of interest to design better catalysts. In this work, we undertake a theoretical study to unravel the mechanism of formation of the previously reported [Ni(OCl)(L)] () and how it activates C-H bonds. We disclose that the active species is indeed compound [Ni(O)(L)], formed after homolytic cleavage of the O-Cl bond in assisted by a chlorine radical. [Ni(O)(L)] mediates C-H activation through an asynchronous concerted mechanism, in which the transition state is given by hydrogen atom transfer. Moreover, the electronic tuning of the ligand has a very modest impact on the stability and reactivity of the corresponding species. Effective oxidation state analysis reveals an intriguing electronic structure of and [Ni(O)(L)], in which both the macrocycic L ligand and the OCl and O ligands behave as redox noninnocent. Such redox activity leads to a fully ambiguous oxidation state assignation.
碳氢化合物的氧化是一种与生物学和工业相关的重要化学转化。与锰或铁相比,镍催化的转化更为少见,但近年来受到了关注,能实现高效氧化。了解这些催化剂的作用机制,包括活性镍 - 氧物种的检测和表征,对于设计更好的催化剂很有意义。在这项工作中,我们进行了一项理论研究,以阐明先前报道的[Ni(OCl)(L)]( )的形成机制及其如何活化C - H键。我们发现活性物种确实是化合物[Ni(O)(L)],它是在氯自由基协助下, 中O - Cl键发生均裂后形成的。[Ni(O)(L)]通过一种异步协同机制介导C - H活化,其中过渡态由氢原子转移给出。此外,配体的电子调谐对相应 物种的稳定性和反应性影响很小。有效的氧化态分析揭示了 和[Ni(O)(L)]有趣的电子结构,其中大环L配体以及OCl和O配体都表现出氧化还原非无辜性。这种氧化还原活性导致氧化态的完全模糊分配。