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Perspective: How can ultrafast laser spectroscopy inform the design of new organic photoredox catalysts for chemical and materials synthesis?

机译:观点:超快激光光谱学如何为化学和材料合成提供新的有机光氧化还原催化剂的设计信息?

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摘要

Photoredox catalysis of chemical reactions, using light-activated molecules which serve as electron donors or acceptors to initiate chemical transformations under mild conditions, is finding widespread use in the synthesis of organic compounds and materials. The transition-metal-centred complexes first developed for these photoredox-catalysed applications are steadily being superseded by more sustainable and lower toxicity organic photocatalysts. While the diversity of possible structures for photoredox-active organic molecules brings benefits of design flexibility, it also presents considerable challenges for optimization of the photocatalyst molecular architecture. Transient absorption spectroscopy over timescales from the femtosecond to microsecond domains can explore the detailed mechanisms of activation and reaction of these organic photocatalysts in solution and, by linking their dynamical properties to their structures, has the potential to establish reliable design principles for future development of improved photocatalysts.
机译:在温和的条件下,使用光活化分子作为电子供体或受体来引发化学转化,在化学反应中进行光氧化还原催化已广泛用于有机化合物和材料的合成中。最初为这些光氧化还原催化应用而开发的以过渡金属为中心的络合物逐渐被更具可持续性和更低毒性的有机光催化剂所取代。尽管光氧化还原活性有机分子的可能结构的多样性带来了设计灵活性的好处,但对于光催化剂分子结构的优化也提出了相当大的挑战。从飞秒到微秒域的时间范围内的瞬态吸收光谱可以探索溶液中这些有机光催化剂的活化和反应的详细机制,并且通过将它们的动力学性质与其结构联系起来,有可能建立可靠的设计原理,以用于改进的未来开发光催化剂。

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