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The Trans Effect in Electrocatalytic CO_2 Reduction: Mechanistic Studies of Asymmetric Ruthenium Pyridyl-Carbene Catalysts

机译:电催化CO_2减少的反式效应:不对称钌吡啶基 - 卡宾催化剂的机械研究

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摘要

A comprehensive mechanistic study of electro-catalytic CO2 reduction by ruthenium 2,2':6',2 ''-terpyridine (tpy) pyridyl-carbene catalysts reveals the importance of stereochemical control to locate the strongly donating N-heterocyclic carbene ligand trans to the site of CO2 activation. Computational studies were undertaken to predict the most stable isomer for a range of reasonable intermediates in CO2 reduction, suggesting that the ligand trans to the reaction site plays a key role in dictating the energetic profile of the catalytic reaction. A new isomer of [Ru(tpy)(Mebim-py)(NCCH3)](2+) (Mebim-py is 1-methylbenzimidazol-2-ylidene-3-(2'-pyridine)) and both isomers of the catalytic intermediate [Ru(tpy)(Mebim-py)(CO)](2+) were synthesized and characterized. Experimental studies demonstrate that both isomeric precatalysts facilitate electroreduction of CO2 to CO in 95/5 MeCN/H2O with high activity and high selectivity. Cyclic voltammetry, infrared spectroelectrochemistry, and NMR spectroscopy studies provide a detailed mechanistic picture demonstrating an essential isomerization step in which the N-trans catalyst converts in situ to the C-trans variant. Insight into molecular electrocatalyst design principles emerge from this study. First, the use of an asymmetric ligand that places a strongly electron-donating ligand trans to the site of CO2 binding and activation is critical to high activity. Second, stereochemical control to maintain the desired isomer structure during catalysis is critical to performance. Finally, pairing the strongly donating pyridyl-carbene ligand with the redox-active tpy ligand proves to be useful in boosting activity without sacrificing overpotential. These design principles are considered in the context of surface-immobilized electrocatalysis.
机译:通过钌2,2':6',2'' - 吡啶(TPy)吡啶基 - 卡宾催化剂的电气催化CO2还原的综合机械研究揭示了立体化学对照的重要性,以定位强烈的N-杂环碳配体转移CO2激活的部位。进行计算研究以预测一系列合理的二氧化碳中间体中最稳定的异构体,表明配体转移到反应部位在规定催化反应的能量曲线方面发挥关键作用。 [ru(tpy)(mebim-py)(ncch3)](2+)(mebim-py是1-甲基苯并咪唑-2- ylidene-3-(2'-吡啶))的新异构体(mebim-py)和催化剂的两种异构体合成和表征中间体[Ru(TPY)(MEBIM-PY)(CO)](2+)。实验研究表明,具有高活性和高选择性的95/5 Mecn / H 2 O中,异构型预催化剂促进了CO2到CO的电气。循环伏安法,红外光谱电化学和NMR光谱研究提供了一种详细的机械图,证明了N-反式催化剂原位转化为C-反式变体的基本异构化步骤。洞察分子电催化剂设计原则从本研究中出现。首先,使用不对称的配体,使得将强电子向配体转移到CO 2结合和活化的位点对高活性至关重要。其次,立体化学对照在催化期间保持所需的异构体结构对性能至关重要。最后,将强氧吡啶基 - 卡宾配体与氧化还原活性TPY配体配对,证明在不牺牲过电位的情况下可用于升压活性。这些设计原理在表面固定的电殖分析的背景下被考虑。

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  • 来源
    《Journal of the American Chemical Society》 |2019年第16期|6658-6671|共14页
  • 作者单位

    Univ N Carolina Dept Chem Chapel Hill NC 27599 USA;

    Univ N Carolina Dept Chem Chapel Hill NC 27599 USA;

    Univ N Carolina Dept Chem Chapel Hill NC 27599 USA;

    Univ N Carolina Dept Chem Chapel Hill NC 27599 USA;

    Brookhaven Natl Lab Chem Div POB 5000 Upton NY 11973 USA;

    Univ N Carolina Dept Chem Chapel Hill NC 27599 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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