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共轭炔烃聚合物的合理设计实现了双电子水氧化途径以增强光合过氧化氢生成。

Rational Design of Conjugated Acetylenic Polymers Enables a Two-Electron Water Oxidation Pathway for Enhanced Photosynthetic Hydrogen Peroxide Generation.

作者信息

Jin Zhiquan, Jin Sijia, Tang Xiaofeng, Tan Wenxian, Wang Da, Song Shuang, Zhang Haiyan, Zeng Tao

机构信息

Key Laboratory of Microbial Technology for Industrial Pollution Control of Zhejiang Province, College of Environment, Zhejiang University of Technology, Hangzhou, Zhejiang, 310032, P. R. China.

Hangzhou Institute for Advanced Study, University of Chinese Academy of Sciences, Hangzhou, Zhejiang, 310024, P. R. China.

出版信息

Small. 2024 Feb;20(5):e2305004. doi: 10.1002/smll.202305004. Epub 2023 Aug 30.

Abstract

Herein, the design of conjugated acetylenic polymers (CAPs) featuring diverse spatial arrangements and intramolecular spacers of diacetylene moieties (─C≡C─C≡C─) for photocatalytic hydrogen peroxide (H O ) production from water and O , without the need for sacrificial agents, is presented. It is shown that the linear configuration of diacetylene moieties within conjugated acetylenic polymers (CAPs) induces a pronounced polarization of electron distribution, which imparts enhanced charge-carrier mobility when compared to CAPs' networks featuring cross-linked arrangements. Moreover, optimizing the intramolecular spacer between diacetylene moieties within the linear structure leads to the exceptional modulation of the band structures, specifically resulting in a downshifted valence band (VB) and rendering the two-electron water oxidation pathway thermodynamically feasible for H O production. Consequently, the optimized CAPs with a linear configuration (LCAP-2), featuring spatially separated reduction centers (benzene rings) and oxidation centers (diacetylene moieties), exhibit a remarkable H O yield rate of 920.1 µmol g h , superior than that of the linear LCAP-1 (593.2 µmol g h ) and the cross-linked CCAP (433.4 µmol g h ). The apparent quantum efficiency (AQE) and solar-to-chemical energy conversion (SCC) efficiency of LCAP-2 are calculated to be 9.1% (λ = 420 nm) and 0.59%, respectively, surpassing the performance of most previously reported conjugated polymers.

摘要

本文介绍了共轭炔烃聚合物(CAPs)的设计,其具有不同的空间排列和二乙炔部分(─C≡C─C≡C─)的分子内间隔基,用于在无需牺牲剂的情况下,从水和氧气光催化生产过氧化氢(H₂O₂)。结果表明,共轭炔烃聚合物(CAPs)中二乙炔部分的线性构型会引起电子分布的明显极化,与具有交联排列的CAPs网络相比,这赋予了更高的电荷载流子迁移率。此外,优化线性结构中二乙炔部分之间的分子内间隔基会导致能带结构的特殊调制,具体而言会导致价带(VB)下移,并使双电子水氧化途径在热力学上对H₂O₂生产可行。因此,具有线性构型的优化CAPs(LCAP-2),其还原中心(苯环)和氧化中心(二乙炔部分)在空间上分离,表现出920.1 μmol g⁻¹ h⁻¹的显著H₂O₂产率,优于线性的LCAP-1(593.2 μmol g⁻¹ h⁻¹)和交联的CCAP(433.4 μmol g⁻¹ h⁻¹)。LCAP-2的表观量子效率(AQE)和太阳能到化学能转换(SCC)效率经计算分别为9.1%(λ = 420 nm)和0.59%,超过了大多数先前报道的共轭聚合物的性能。

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