化学
电荷(物理)
光催化
共价键
光化学
金属有机骨架
共价有机骨架
化学工程
可见光谱
工作(物理)
组合化学
作者
Yucheng Jin,Heyuan Liu,Qixin Zhou,Xiaoning Zhan,Boce Cui,Hailong Wang,Dongdong Qi,Zhiying Chen,Baoqiu Yu,Xiaonan Pang,Bin Liu,Jianzhuang Jiang
摘要
Replicating the multiphoton and multielectron redox chemistry of natural photosynthesis remains a challenge for artificial photocatalysis. Herein, abnormal multistep charge transfer is discovered in a two-dimensional single-crystalline covalent organic framework (COF), namely USTB-35-Cu. Continuous rotation electron diffraction coupled with theoretical simulation resolves the crystal structure, containing imine-linked 5,10,15,20-tetrakis(4-aminophenyl)porphyrinato copper(II) (CuTAP) and tetraaldehyde-containing perylenediimide (TFPDI) layers in a staggered packing. After obtaining photoinduced donor−acceptor (D−A) charge-separated states, excited TFPDI anion radicals (A •− ) sequentially transfer photogenerated electrons to the surrounding porphyrin moieties (D). The TFPDI cation radicals (A •+ ) are formed due to fast charge delocalization, leading to the rearrangement of water hydrogen bonding for efficient proton-coupled electron transfer. Therefore, the CuTAP anion radicals enable eight-electron CO 2 photoreduction, achieving a remarkable CH 4 production rate of 188 μmol g −1 h −1 with a 99% selectivity. This work demonstrates the capability of single-crystalline COFs for coupling multistep charge transfer with multielectron CO 2 photoreduction from both thermodynamic and kinetic perspectives.
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