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通过有效氧化态分析对过渡金属光氧化还原催化剂的氧化和还原猝灭循环的机理洞察

Mechanistic Insights into the Oxidative and Reductive Quenching Cycles of Transition Metal Photoredox Catalysts through Effective Oxidation State Analysis.

作者信息

Medina Edinson, Sandoval-Pauker Christian, Salvador Pedro, Pinter Balazs

机构信息

Department of Chemistry, Universidad Técnica Federico Santa María, Av. España 1680, 2390123 Valparaíso, Chile.

Department of Chemistry and Biochemistry, University of Texas at El Paso, El Paso, Texas 79968, Unites States.

出版信息

Inorg Chem. 2022 Nov 28;61(47):18923-18933. doi: 10.1021/acs.inorgchem.2c02945. Epub 2022 Nov 14.

DOI:10.1021/acs.inorgchem.2c02945
PMID:36375089
Abstract

The electronic structures of the ground and excited electronic states involved in the oxidative and reductive quenching cycles of 12 relevant ruthenium, iridium, and copper photoredox catalysts (, , , and ) are characterized using the recently developed effective oxidation state (EOS) analysis, allowing the monitoring of metal and ligand oxidation states (OSs) along the catalytic cycles. The formal oxidation state assignments derived from the EOS analysis are in agreement with those commonly assumed for these complexes in both ground and excited states. Rather clean and separate ligand- and metal-centered redox events along the different quenching cycles are observed in most of the studied molecular systems. The reliability index obtained for the OS assignations can be readily interpreted in terms of the ionic/covalent character of metal-ligand interactions and ligand non-innocent character. In addition, EOS analysis reveals the high-degree localization of the ligand-centered redox event to one or two redox-active ligand(s) in heteroleptic complexes. Ligand- and metal-condensed spin populations were also computed and analyzed for all the open-shell species involved in this study, showing promises for rapid oxidation state assignments in certain systems, especially Ru complexes, however, suffering from severe defects in other cases.

摘要

利用最近开发的有效氧化态(EOS)分析方法,对12种相关钌、铱和铜光氧化还原催化剂(、、、和)的氧化和还原猝灭循环中涉及的基态和激发态电子结构进行了表征,从而能够监测催化循环中金属和配体的氧化态(OS)。由EOS分析得出的形式氧化态归属与这些配合物在基态和激发态时通常假定的氧化态一致。在大多数研究的分子体系中,沿着不同的猝灭循环观察到相当清晰且独立的以配体和金属为中心的氧化还原事件。从金属 - 配体相互作用的离子/共价特性以及配体非无辜特性的角度,可以很容易地解释OS归属所获得的可靠性指标。此外,EOS分析揭示了在异配体配合物中,以配体为中心的氧化还原事件高度定域于一个或两个氧化还原活性配体上。还对本研究中涉及的所有开壳层物种计算并分析了配体和金属凝聚自旋布居,结果表明在某些体系(特别是钌配合物)中快速进行氧化态归属有一定前景,但在其他情况下存在严重缺陷。

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