State Key Laboratory of Photocatalysis on Energy and Environment, College of Chemistry, Fuzhou University, Fuzhou, 350108, P. R. China.
Qingyuan Innovation Laboratory, Quanzhou, 362801, P. R. China.
Angew Chem Int Ed Engl. 2023 May 22;62(22):e202303785. doi: 10.1002/anie.202303785. Epub 2023 Apr 25.
Conjugated polymers (CPs) represent a promising platform for photocatalytic CO fixation owing to their suitable band structures that meet the requirements of the reduction potential of CO to value-added fuels. However, the photocatalytic performance of CPs is rather restrained by the low charge transfer efficiency. Herein, we rationally designed three CPs with a more delocalized electronic transmission channel and planar molecular structure, which are regarded to evidently reduce the exciton binding energy (E ) and accelerate the internal charge transfer process. Besides, the assembly of suitable electron-output "tentacles" and cocatalysts on the surface of CPs could effectively facilitate interfacial electron delivery. Accordingly, the optimal P-2CN exhibits an apparent quantum yield of 4.6 % at 420 nm for photocatalytic CO to CO. Further adjusting the amounts of cyano groups and cocatalysts, the CO selectivity could be obtained in the range of 0-80.5 %.
共轭聚合物(CPs)由于其合适的能带结构满足了 CO 还原为附加值燃料的还原电位要求,因此是用于光催化 CO 固定的一种很有前途的平台。然而,CPs 的光催化性能受到低电荷转移效率的限制。在此,我们合理设计了三种具有更离域的电子传输通道和平面分子结构的 CPs,这被认为可以显著降低激子结合能(E)并加速内部电荷转移过程。此外,在 CPs 表面组装合适的电子输出“触手”和助催化剂可以有效地促进界面电子传递。因此,最佳的 P-2CN 在 420nm 处的光催化 CO 至 CO 的表观量子产率达到 4.6%。进一步调整氰基的数量和助催化剂的用量,可以获得 0-80.5%范围内的 CO 选择性。