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解耦层间相互作用促进共价有机框架中的电荷分离以实现高效光催化CO还原

Decoupling Interlayer Interactions Boosts Charge Separation in Covalent Organic Frameworks for High-Efficiency Photocatalytic CO Reduction.

作者信息

Qin Liyang, Sun Dazhong, Ma Daokuan, Wang Zirui, Liu Yuan, Li Qiaohong, Song Fei, Wu Kaifeng, Gan Liyong, Zhou Tianhua, Zhang Jian

机构信息

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

College of Physics and Center of Quantum Materials and Devices, Chongqing University, Chongqing, 401331, China.

出版信息

Adv Mater. 2025 Jul;37(29):e2504205. doi: 10.1002/adma.202504205. Epub 2025 Apr 29.

Abstract

Covalent organic frameworks (COFs) have emerged as promising photocatalysts owing to their structural diversity, tunable bandgaps, and exceptional light-harvesting capabilities. While previous studies primarily focus on developing narrow-bandgap COFs for broad-spectrum solar energy utilization, the critical role of interlayer coupling in regulating charge transfer dynamics remains unclear. Conventional monolayer-based theoretical models inadequately address interlayer effects that potentially hindering intralayer electron transport to catalytic active sites. This work employs density functional theory (DFT) calculations to investigate the influence of interlayer interactions on intralayer charge transfer in imine-based COFs. Theoretical analyses reveal that bilayer architectures exhibit pronounced interlayer interference in intramolecular charge transfer processes which has not been observed in monolayer models. Based on these mechanistic insights, this work designs two isomeric pyrene-based COFs incorporating identical electron donor (pyrene) and acceptor (nickel bipyridine) units but with distinct interlayer coupling strengths. Strikingly, the optimized COF with weakened interlayer interactions demonstrates exceptional photocatalytic CO reduction performance, achieving a CO evolution rate of 553.3 µmol g h with 94% selectivity under visible light irradiation without additional photosensitizers or co-catalysts. These findings establish interlayer engineering as a crucial design principle for developing high-performance COF-based photocatalysts for solar energy conversion applications.

摘要

共价有机框架(COFs)因其结构多样性、可调节的带隙和出色的光捕获能力而成为有前景的光催化剂。虽然先前的研究主要集中在开发用于广谱太阳能利用的窄带隙COFs,但层间耦合在调节电荷转移动力学中的关键作用仍不清楚。传统的基于单层的理论模型无法充分解决可能阻碍层内电子传输到催化活性位点的层间效应。这项工作采用密度泛函理论(DFT)计算来研究层间相互作用对基于亚胺的COFs中层内电荷转移的影响。理论分析表明,双层结构在分子内电荷转移过程中表现出明显的层间干扰,这在单层模型中尚未观察到。基于这些机理见解,这项工作设计了两种基于芘的异构COFs,它们包含相同的电子供体(芘)和受体(联吡啶镍)单元,但具有不同的层间耦合强度。引人注目的是,具有减弱层间相互作用的优化COF表现出出色的光催化CO还原性能,在可见光照射下无需额外的光敏剂或助催化剂,CO析出速率达到553.3 µmol g⁻¹ h⁻¹,选择性为94%。这些发现确立了层间工程作为开发用于太阳能转换应用的高性能基于COF的光催化剂的关键设计原则。

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