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Alkene‐Linked Covalent Organic Frameworks Boosting Photocatalytic Hydrogen Evolution by Efficient Charge Separation and Transfer in the Presence of Sacrificial Electron Donors

机译:烯烃连接的共价有机框架通过在牺牲电子给体存在下的有效电荷分离和转移促进光催化氢的释放

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摘要

Covalent organic frameworks (COFs) are potential photocatalysts for artificial photosynthesis but they are much less explored for photocatalytic hydrogen evolution (PHE). COFs, while intriguing due to crystallinity, tunability, and porosity, tend to have low apparent quantum efficiency (AQE) and little is explored on atomistic structure–performance correlation. Here, adopting triphenylbenzene knots and phenyl linkers as a proof of concept, three structurally related COFs with different linkages are constructed to achieve a tunable COF platform and probe the effect of the linkage chemistry on PHE. Cyano‐substituted alkene‐linked COF (COF–alkene) yields a stable 2330 µmol h g PHE rate, much superior to imine‐ and imide‐linked counterparts (<40 µmol h g ) under visible light irradiation. Impressively, COF–alkene achieves an AQE of 6.7% at 420 nm. Combined femtosecond transient absorption spectroscopy and theoretical calculation disclose the critical role of cyano‐substituted alkene linkages toward high efficiency of charge separation and transfer in the presence of sacrificial electron donors—the decisive key to the superior PHE performance. Such alkene linkages can also be extended to design a series of high‐performance polymeric photocatalysts, highlighting a general design idea for efficient PHE.
机译:共价有机骨架(COF)是潜在的用于人工光合作用的光催化剂,但对于光催化制氢(PHE)的探索则少得多。 COF虽然由于结晶度,可调谐性和孔隙率而引人入胜,但它们的表观量子效率(AQE)往往较低,关于原子结构与性能的相关性研究甚少。在这里,以三苯苯结和苯基接头为概念证明,构建了三个具有不同键的结构相关的COF,以实现可调谐的COF平台并探讨了键合化学对PHE的影响。氰基取代的烯烃连接的COF(COF-烯烃)产生的PHE速率稳定在2330 µmol h g,比可见光照射下亚胺和酰亚胺连接的同行(<40 µmol h g)要好得多。令人印象深刻的是,COF-烯烃在420 nm处的AQE为6.7%。飞秒瞬态吸收光谱法和理论计算相结合,揭示了在牺牲电子供体存在的情况下,氰基取代的烯烃键对电荷分离和转移的高效率的关键作用-决定优异PHE性能的关键。这种烯烃键也可以扩展为设计一系列高性能聚合物光催化剂,从而突出了高效PHE的一般设计思路。

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