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用于促进光催化析氢的三元供体-π-受体共价有机框架

Three-Component Donor-π-Acceptor Covalent-Organic Frameworks for Boosting Photocatalytic Hydrogen Evolution.

作者信息

Li Ziping, Deng Tianqi, Ma Si, Zhang Zhenwei, Wu Gang, Wang Jiaao, Li Qizhen, Xia Hong, Yang Shuo-Wang, Liu Xiaoming

机构信息

College of Chemistry, Jilin University, Changchun 130012, P. R. China.

Institute of High Performance Computing, Agency for Science, Technology and Research, 1 Fusionopolis Way, #16-16 Connexis, Singapore 138632, Singapore.

出版信息

J Am Chem Soc. 2023 Mar 14. doi: 10.1021/jacs.2c11893.

Abstract

Two-dimensional covalent-organic frameworks (2D COFs) have recently emerged as great prospects for their applications as new photocatalytic platforms in solar-to-hydrogen conversion; nevertheless, their inefficient solar energy capture and fast charge recombination hinder the improvement of photocatalytic hydrogen production performance. Herein, two photoactive three-component donor-π-acceptor (TCDA) materials were constructed using a multicomponent synthesis strategy by introducing electron-deficient triazine and electron-rich benzotrithiophene moieties into frameworks through sp carbon and imine linkages, respectively. Compared with two-component COFs, the novel TCDA-COFs are more convenient in regulating the inherent photophysical properties, thereby realizing outstanding photocatalytic activity for hydrogen evolution from water. Remarkably, the first sp carbon-linked TCDA-COF displays an impressive hydrogen evolution rate of 70.8 ± 1.9 mmol g h with excellent reusability in the presence of 1 wt % Pt under visible-light illumination (420-780 nm). Utilizing the combination of diversified spectroscopy and theoretical prediction, we show that the full π-conjugated linkage not only effectively broadens the visible-light harvesting of COFs but also enhances charge transfer and separation efficiency.

摘要

二维共价有机框架(2D COFs)最近作为新型光催化平台在太阳能制氢转化中的应用展现出巨大前景;然而,其低效的太阳能捕获和快速的电荷复合阻碍了光催化产氢性能的提高。在此,通过多组分合成策略构建了两种光活性三组分供体-π-受体(TCDA)材料,分别通过sp碳和亚胺键将缺电子的三嗪和富电子的苯并三噻吩部分引入框架中。与双组分COFs相比,新型TCDA-COFs在调节固有光物理性质方面更加便利,从而实现了从水中析氢的出色光催化活性。值得注意的是,第一种sp碳连接的TCDA-COF在1 wt% Pt存在下,在可见光照射(420-780 nm)下显示出令人印象深刻的70.8±1.9 mmol g⁻¹ h⁻¹的析氢速率以及出色的可重复使用性。利用多种光谱学和理论预测的结合,我们表明全π共轭键不仅有效地拓宽了COFs的可见光捕获范围,还提高了电荷转移和分离效率。

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