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Tailored oxido-vanadium(V) cage complexes for selective sulfoxidation in confined spaces

机译:封闭空间中选择性硫氧化的量身定制的氧化钒(V)笼络合物

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摘要

Five sets of oxido-vanadium(V) complexes, which include both cages and open structures, were prepared and tested in the catalytic oxidation of sulfides. It was found that the hemicryptophane complexes, which are simultaneously comprised of cyclotriveratrylene (CTV), binaphthol and oxido-vanadium(V) moieties, are the most efficient supramolecular catalysts. The specific shape of the confined hydrophobic space above the metal center leads to a strong improvement in the yield, selectivity and rate of the reaction, compared to the other catalysts investigated herein. A remarkable turnover number (TON) of 10 000 was obtained, which can be attributed to both the high reactivity and stability of the catalyst. Similarly to enzymes, the kinetic analysis shows that the mechanism of oxidation with the supramolecular catalysts obeys the Michaelis–Menten model, in which initial rate saturation occurs upon an increase in substrate concentration. This enzyme-like behavior is also supported by the competitive inhibition and substrate size-selectivity observed, which underline the crucial role played by the cavity.
机译:制备了五套氧化钒(V)配合物,包括笼和开放结构,并在硫化物的催化氧化中进行了测试。发现同时由环三藜芦烯(CTV),联萘酚和氧化钒(V)部分组成的半色氨酸络合物是最有效的超分子催化剂。与本文研究的其他催化剂相比,金属中心上方的受限疏水空间的特定形状导致反应的产率,选择性和反应速率的显着提高。获得了10 000的显着周转率(TON),这可以归因于催化剂的高反应性和稳定性。与酶类似,动力学分析表明,超分子催化剂的氧化机理遵循Michaelis-Menten模型,其中初始速率饱和随着底物浓度的增加而发生。观察到的竞争性抑制和底物大小选择性也支持了这种酶样行为,这些都强调了腔体起着至关重要的作用。

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