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Kinetics and DFT Studies of Photoredox Carbon-Carbon Bond Cleavage Reactions by Molecular Vanadium Catalysts under Ambient Conditions

机译:在环境条件下,分子钒催化剂的Photoreox碳 - 碳键切割反应的动力学和DFT研究

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Visible light assisted photocatalytic organic reactions have recently received intense attention as a versatile approach to achieve selective chemical transformations, including C-C and several C-X (X = N, O, S) bond formations under mild reaction conditions. The light harvesters in previous reports predominantly comprise ruthenium or iridium photosensitizers. In contrast, selective, photocatalytic aliphatic C-C bond cleavage reactions are scarce. The present study focuses on rationally designing V" oxo complexes as molecular, photoredox catalysts toward the selective activation and cleavage of a C-C bond adjacent to the alcohol group in aliphatic alcoholic substrates. We have employed kinetics measurements and DFT calculations to develop a candidate for the catalytic C-C bond activation reaction that is up to 7 times faster than our original vanadium complex. We have also identified a substrate where the C-C bond cleaves at rates 2.5-17 times faster, depending on the catalyst used. In order to better understand the effects of ligand modification on the thermodynamics and catalysis, DFT calculations were employed to reveal the orbital energies, the electronic transitions during the C-C bond cleavage, and the activation barriers. Our combined kinetics and computational studies indicate that the incorporation of electron-withdrawing groups at select sites of the ligand is essential for the development of active and stable vanadium photocatalysts for our C-C bond cleavage reactions.
机译:可见光辅助光催化有机反应最近接受强烈关注,以实现选择性化学转化,包括在温和反应条件下的C-C和几种C-X(X = N,O,S)键合形成。先前报告中的光收割机主要包括钌或铱光敏剂。相反,选择性,光催化脂族C-C键裂解反应是稀缺的。本研究侧重于合理设计V“氧代复合物作为分子,光致毒剂催化剂朝向脂族醇底物中醇组相邻的CC键的选择性和切割。我们使用动力学测量和DFT计算来开发候选人催化CC键活化反应比我们原始的钒络合物快7倍。我们还鉴定了一种基质,其中CC键在速率下速度快2.5-17倍,这取决于所用的催化剂。为了更好地了解效果对热力学和催化的配体改性,使用DFT计算来揭示轨道能量,在CC键裂解期间的电子转换和激活障碍。我们的合并动力学和计算研究表明,在选择时掺入了电子提取组配体的部位对于开发活性和稳定的钒是必不可少的光催化剂为我们的C-C键切割反应。

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