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基于三嗪骨架的共轭微孔聚合物中分子内电场对反应位点的设计实现 CO 光转化近 100%选择性

Reaction Site Designation by Intramolecular Electric Field in Tröger's-Base-Derived Conjugated Microporous Polymer for Near-Unity Selectivity of CO Photoconversion.

机构信息

School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.

Jiangsu Key Laboratory of Chemical Pollution Control and Resources Reuse, School of Environmental and Biological Engineering, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.

出版信息

Adv Mater. 2023 Apr;35(17):e2210693. doi: 10.1002/adma.202210693. Epub 2023 Mar 15.

Abstract

To facilitate solar-driven overall CO and H O convsersion into fuels and O , a series of covalent microporous polymers derived from Tröger's base are synthesized featuring flexural backbone and unusual charge-transfer properties. The incorporation of rigid structural twist Tröger's base unit grants the polymers enhanced microporosity and CO adsorption/activation capacity. Density function theory calculations and photo-electrochemical analyses reveal that an electric dipole moment (from negative to positive) directed to the Tröger's base unit is formed across two obliquely opposed molecular fragments and induces an intramolecular electric field. The Tröger's base unit located at folding point becomes an electron trap to attract photogenerated electrons in the molecular network, which brings about suppression of carrier recombination and designates the reaction site in synergy with the conjugated network. In response to the discrepancy in reaction pathways across the reaction sites, the product allocation in the catalytic reaction is thereby regulated. Optimally, CMP-nTB achieves the highest photocatalytic CO production of 163.53 µmol g h with approximately unity selectivity, along with H O oxidation to O in the absence of any photosensitizer or co-catalyst. This work provides new insight for developing specialized artificial organic photocatalysts.

摘要

为了促进太阳能驱动的 CO 和 H O 整体转化为燃料和 O ,我们合成了一系列源自 Tröger's 碱的共价微孔聚合物,其具有可弯曲的骨架和不寻常的电荷转移特性。刚性结构扭曲的 Tröger's 碱单元的掺入赋予聚合物增强的微孔性和 CO 吸附/活化能力。密度泛函理论计算和光电化学分析表明, across two obliquely opposed molecular fragments 在两个斜对的分子片段之间形成指向 Tröger's 碱单元的电偶极矩(从负到正),并诱导分子内电场。位于折叠点的 Tröger's 碱单元成为电子陷阱,吸引分子网络中的光生电子,从而抑制载流子复合,并与共轭网络协同指定反应位点。针对反应位点之间反应途径的差异,从而调节催化反应中的产物分配。优化后,CMP-nTB 在没有任何光敏剂或共催化剂的情况下,实现了最高的 163.53µmol g h 的光催化 CO 生成,选择性接近 1,同时将 H O 氧化为 O 。这项工作为开发专门的人工有机光催化剂提供了新的见解。

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