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Electrochemical ruthenium-catalysed C–H activation in water through heterogenization of a molecular catalyst

机译:通过分子催化剂的异质化,电化学唯一的CATALENIUM催化的C – H激活

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摘要

Efficient catalytic oxidative C–H activation of organic substrates remains an important challenge in synthetic chemistry. Here, we show that the combination of a transition metal catalyst, surface immobilisation and an electrochemical potential provide a promising approach to effecting these transformations in aqueous solution. A ruthenium-based molecular catalyst [Ru(tpy)(pic-PO3H2)(Cl)] (where tpy is 2,2′:6′,2′′-terpyridine, pic-PO3H2 is 4-phosphonopyrid-2-ylcarboxylic acid) was synthesised and fully characterised. Oxidation of benzyl alcohol with the catalyst in aqueous media using ceric ammonium nitrate as terminal oxidant resulted in a rapid deactivation of the catalyst. Immobilisation of the catalyst on a mesoporous indium tin oxide electrode surface through the phosphonate anchoring group was shown to circumvent the issues observed in solution. Using the heterogeneous catalyst system, the oxidation of a variety of organic substrates with varying bond dissociation energies was demonstrated with turnover numbers of up to 346. Finally, surface-analysis of the functionalised electrodes after catalysis revealed that fragmentation of the complex during the reaction was the limiting factor for catalytic performance.
机译:有机底物的有效催化氧化C – H活化仍然是合成化学中的重要挑战。在这里,我们表明过渡金属催化剂,表面固定和电化学潜力的结合提供了一种有希望的方法,可以在水溶液中影响这些转化。基于钌的分子催化剂[RU(TPY)(PIC-PO3H2)(Cl)](其中TPY为2,2':6',2'- terpyridine,PIC-PO3H2为4-磷酸 - 吡啶2-羧酸)合成并充分表征。用硝酸盐作为末端氧化剂在水性培养基中用催化剂氧化与催化剂氧化导致催化剂的快速失活。证明催化剂通过磷酸锚固组固定在介孔的氧化锡电极表面上,以避免溶液中观察到的问题。使用异质性催化剂系统,证明了各种具有不同键解离能量的各种有机底物的氧化,其营业额数量最高为346。最后,催化后功能性电极的表面分析表明,在反应过程中,复合物在反应过程中的碎裂是在反应中的碎片化。催化性能的限制因素。

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