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在共价有机框架中构建亚胺碳催化位点以增强整体光催化水分解

Engineering Imine Carbon Catalytic Sites in Covalent Organic Frameworks for Enhanced Overall HO Photosynthesis.

作者信息

Yang Shuailong, Si Duanhui, Zou Lei, Shi Minghao, Huang Yuanbiao, Cao Rong

机构信息

Fujian Science and Technology Innovation Laboratory for Optoelectronic Information of China, Fuzhou 350108, China.

State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, China.

出版信息

J Am Chem Soc. 2025 Aug 20;147(33):30287-30295. doi: 10.1021/jacs.5c09327. Epub 2025 Aug 6.

Abstract

Covalent organic frameworks (COFs) have emerged as ideal photocatalysts for hydrogen peroxide (HO) photosynthesis from oxygen and water due to their broad light harvesting and programmable structures. However, their catalytic efficiency remains constrained by undefined electron transfer pathways caused by redundant inactive sites around the catalytic sites. Herein, we report a polarization engineering strategy that converts the imine unit from an electronic recombination-prone center into a catalytic center for the oxygen reduction reaction. Ultrafast spectroscopy and theoretical calculations reveal that reducing imine polarization could simultaneously inhibit excited-state deactivation, promote O adsorption and activation, and achieve direct electron transfer from the triphenylbenzene photosensitizer units to the imine catalytic center via the proximity effect. Consequently, azine-linked COF with low polarization of imine units delivers high HO production yields of 2311 μmol g from O and HO for 2 h, which is 3.8 and 2.9 times higher than that of the imine-linked COF with medium polarization and hydrazone-linked COF with high polarization, respectively. This work pioneers a paradigm for engineering imine catalytic sites in COFs, providing a molecular blueprint for designing high-efficiency photocatalytic systems with spatially optimized photosensitizer centers and active sites.

摘要

共价有机框架(COFs)因其广泛的光捕获能力和可定制结构,已成为通过氧气和水进行过氧化氢(HO)光合作用的理想光催化剂。然而,其催化效率仍受到催化位点周围多余无活性位点导致的电子转移途径不明确的限制。在此,我们报告了一种极化工程策略,该策略将亚胺单元从易于电子复合的中心转变为氧还原反应的催化中心。超快光谱和理论计算表明,降低亚胺极化可以同时抑制激发态失活,促进O的吸附和活化,并通过邻近效应实现从三苯基苯光敏剂单元到亚胺催化中心的直接电子转移。因此,亚胺单元低极化的嗪连接COF在2小时内从O和HO产生的HO产率高达2311 μmol g,分别比中等极化的亚胺连接COF和高极化的腙连接COF高3.8倍和2.9倍。这项工作开创了在COF中设计亚胺催化位点的范例,为设计具有空间优化光敏剂中心和活性位点的高效光催化系统提供了分子蓝图。

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