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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Challenges in polyoxometalate-mediated aerobic oxidation catalysis: catalyst development meets reactor design
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Challenges in polyoxometalate-mediated aerobic oxidation catalysis: catalyst development meets reactor design

机译:多金属氧酸盐介导的好氧氧化催化的挑战:催化剂的开发符合反应器设计

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Selective catalytic oxidation is one of the most widely used chemical processes. Ideally, highly active and selective catalysts are used in combination with molecular oxygen as oxidant, leading to clean, environmentally friendly process conditions. For homogeneous oxidation catalysis, molecular metal oxide anions, so-called polyoxometalates (POMs) are ideal prototypes which combine high reactivity and stability with chemical tunability on the molecular level. Typically, POM-mediated aerobic oxidations are biphasic, using gaseous O-2 and liquid reaction mixtures. Therefore, the overall efficiency of the reaction is not only dependent on the chemical components, but requires chemical engineering insight to design reactors with optimized productivity. This Perspective shows that POM-mediated aerobic liquid-phase oxidations are ideal reactions to be carried out in microstructured flow reactors as they enable facile mass and energy transfer, provide large gas-liquid interfaces and can be easily upscaled. Recent advances in POM-mediated aerobic catalytic oxidations are therefore summarized with a focus on technological importance and mechanistic insight. The principles of reactor design are discussed from a chemical engineering point of view with a focus on homogeneous oxidation catalysis using O-2 in microfluidic systems. Further, current limitations to catalytic activity are identified and future directions based on combined chemistry and chemical engineering approaches are discussed to show that this approach could lead to sustainable production methods in industrial chemistry based on alternative energy sources and chemical feedstocks.
机译:选择性催化氧化是使用最广泛的化学过程之一。理想情况下,将高活性和选择性的催化剂与分子氧作为氧化剂结合使用,可产生清洁,环境友好的工艺条件。对于均相氧化催化,分子金属氧化物阴离子,即所谓的多金属氧酸盐(POM)是理想的原型,其在分子水平上将高反应性和稳定性与化学可调性结合在一起。通常,使用气态O-2和液体反应混合物,POM介导的好氧氧化是两相的。因此,反应的总效率不仅取决于化学成分,而且还需要化学工程学的知识来设计具有最佳生产率的反应器。该观点表明,POM介导的好氧液相氧化是在微结构流动反应器中进行的理想反应,因为它们能够轻松进行质量和能量传递,提供大的气液界面,并且易于升级。因此,总结了POM介导的好氧催化氧化的最新进展,重点是技术重要性和机械原理。从化学工程的角度讨论了反应器设计的原理,重点是在微流体系统中使用O-2进行均相氧化催化。此外,确定了催化活性的当前局限性,并讨论了基于化学与化学工程相结合的方法的未来方向,以表明该方法可导致基于替代能源和化学原料的工业化学可持续生产方法。

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