Russo Camilla, Donati Greta, Giustiniano Francesco, Amato Jussara, Marinelli Luciana, Whitby Richard John, Giustiniano Mariateresa
Department of Pharmacy, University of Naples Federico II, via D. Montesano 49, 80131, Napoli, Italy.
School of Chemistry, University of Southampton, University Road, SO171BJ, Southampton, UK.
Chemistry. 2023 Oct 26;29(60):e202301852. doi: 10.1002/chem.202301852. Epub 2023 Sep 21.
The recent disclosure of the ability of aromatic isocyanides to harvest visible light and act as single electron acceptors when reacting with tertiary aromatic amines has triggered a renewed interest in their application to the development of green photoredox catalytic methodologies. Accordingly, the present work explores their ability to promote the generation of both alkyl and acyl radicals starting from radical precursors such as Hantzsch esters, potassium alkyltrifluoroborates, and α-oxoacids. Mechanistic studies involving UV-visible absorption and fluorescence experiments, electrochemical measurements of the ground-state redox potentials along with computational calculations of both the ground- and the excited-state redox potentials of a set of nine different aromatic isocyanides provide key insights to promote a rationale design of a new generation of isocyanide-based organic photoredox catalysts. Importantly, the green potential of the investigated chemistry is demonstrated by a direct and easy access to deuterium labeled compounds.
最近有研究表明,芳香族异腈能够捕获可见光,并在与叔芳香胺反应时充当单电子受体,这引发了人们对其在绿色光氧化还原催化方法开发中的应用的新兴趣。因此,本研究探讨了它们从诸如汉斯酯、烷基三氟硼酸钾和α-氧代酸等自由基前体出发促进烷基和酰基自由基生成的能力。涉及紫外可见吸收和荧光实验的机理研究、基态氧化还原电位的电化学测量以及一组九种不同芳香族异腈的基态和激发态氧化还原电位的计算,为促进新一代基于异腈的有机光氧化还原催化剂的合理设计提供了关键见解。重要的是,通过直接且简便地获得氘标记化合物,证明了所研究化学过程的绿色潜力。