Highly crystalline benzothiadiazole covalent organic framework for enhanced Cr(VI) photocatalytic reduction by constructing donor-acceptor structure

Chen Wang, Wen Lu, Wenhui Song, Zhixiong Zhang, Chengde Xie, Yu Li, Jianjun Wang
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Abstract

Covalent organic frameworks (COFs) have gained significant attention in environmental remediation. In this paper, we synthesized two sp carbon-conjugated COFs (HDU-107 and HDU-108) using [1,1′:4′,1''-terphenyl]-4,4''-dicarbonitrile and 2,2′-(benzo[][1,2,5]thiadiazole-4,7-diylbis(4,1-phenylene))diacetonitrile as the core, and benzo[1,2-b:3,4-b′:5,6-b″]trithiophene-2,5,8-tricarbaldehyde as the linker, for efficient photocatalytic reduction of Chromium (VI) (Cr(VI)). HDU-108 successfully constructed an electron donor-acceptor (D-A) structure using electron-rich thiophene as the electron donor and benzothiadiazole as the acceptor, exhibiting excellent photocatalytic ability due to its structure, which facilitated the spatial separation of charge carriers and reduced charge complexation. This ability was far superior to that of HDU-107. For 10 mg of HDU-108, the efficiency of Cr(VI) reduction in 120 minutes was more than 99.9 %. And the cycle experiments confirmed its good reusability and stability. e played a dominant role in the photoreduction of Cr(VI). Moreover, density-functional theory (DFT) simulations indicated that constructing D-A structures was an effective strategy for modulating photocatalytic activity. The charge separation was triggered by the polarization of the electron-rich BTT nucleus to the local charge density, while the cyanine conjugation provided the active center to concentrate the electronegativity. In conclusion, HDU-108, is expected to be a highly efficient photocatalytic material for environmental remediation.
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通过构建供体-受体结构增强六价铬光催化还原能力的高结晶苯并噻二唑共价有机框架
共价有机框架(COFs)在环境修复领域备受关注。本文利用[1,1′:4′,1''-三联苯]-4,4''-二甲腈和 2,2′-(苯并[][1,2,5]噻二唑-4,7-二基双(4,1-亚苯基))二乙腈为核心,苯并[1,2-b:3,4-b′:5,6-b″]三噻吩-2,5,8-三甲醛为连接体,用于高效光催化还原铬(六价铬)。HDU-108 以富含电子的噻吩为电子供体,苯并噻二唑为受体,成功构建了电子供体-受体(D-A)结构,由于其结构有利于电荷载体的空间分离,减少了电荷复合,因此表现出卓越的光催化能力。这种能力远远优于 HDU-107。对于 10 毫克 HDU-108,在 120 分钟内还原六价铬的效率超过 99.9%。此外,循环实验也证实了 HDU-108 具有良好的重复使用性和稳定性。此外,密度泛函理论(DFT)模拟表明,构建 D-A 结构是调节光催化活性的有效策略。电荷分离是由富含电子的 BTT 核对局部电荷密度的极化引发的,而氰基共轭则提供了集中电负性的活性中心。总之,HDU-108 有望成为一种用于环境修复的高效光催化材料。
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