Li Chunzhi, Liu Jiali, Li He, Wu Kaifeng, Wang Junhui, Yang Qihua
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian, 116023, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.
Nat Commun. 2022 Apr 29;13(1):2357. doi: 10.1038/s41467-022-30035-x.
Organic semiconductors offer a tunable platform for photocatalysis, yet the more difficult exciton dissociation, compared to that in inorganic semiconductors, lowers their photocatalytic activities. In this work, we report that the charge carrier lifetime is dramatically prolonged by incorporating a suitable donor-acceptor (β-ketene-cyano) pair into a covalent organic framework nanosheet. These nanosheets show an apparent quantum efficiency up to 82.6% at 450 nm using platinum as co-catalyst for photocatalytic H evolution. Charge carrier kinetic analysis and femtosecond transient absorption spectroscopy characterizations verify that these modified covalent organic framework nanosheets have intrinsically lower exciton binding energies and longer-lived charge carriers than the corresponding nanosheets without the donor-acceptor unit. This work provides a model for gaining insight into the nature of short-lived active species in polymeric organic photocatalysts.
有机半导体为光催化提供了一个可调节的平台,然而,与无机半导体相比,其激子解离更为困难,这降低了它们的光催化活性。在这项工作中,我们报道了通过将合适的供体-受体(β-乙烯酮-氰基)对引入共价有机框架纳米片,电荷载流子寿命得到了显著延长。使用铂作为光催化析氢的助催化剂,这些纳米片在450nm处显示出高达82.6%的表观量子效率。电荷载流子动力学分析和飞秒瞬态吸收光谱表征证实,这些改性的共价有机框架纳米片比没有供体-受体单元的相应纳米片具有本质上更低的激子结合能和更长寿命的电荷载流子。这项工作为深入了解聚合物有机光催化剂中短寿命活性物种的本质提供了一个模型。