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Porous hypercrosslinked polymer-TiO2-graphene composite photocatalysts for visible-light-driven CO2 conversion

机译:多孔超交联聚合物-TiO2-石墨烯复合光催化剂的可见光驱动CO2转化

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摘要

Significant efforts have been devoted to develop efficient visible-light-driven photocatalysts for the conversion of CO2 to chemical fuels. The photocatalytic efficiency for this transformation largely depends on CO2 adsorption and diffusion. However, the CO2 adsorption on the surface of photocatalysts is generally low due to their low specific surface area and the lack of matched pores. Here we report a well-defined porous hypercrosslinked polymer-TiO2-graphene composite structure with relatively high surface area i.e., 988 m2 g−1 and CO2 uptake capacity i.e., 12.87 wt%. This composite shows high photocatalytic performance especially for CH4 production, i.e., 27.62 μmol g−1 h−1, under mild reaction conditions without the use of sacrificial reagents or precious metal co-catalysts. The enhanced CO2 reactivity can be ascribed to their improved CO2 adsorption and diffusion, visible-light absorption, and photo-generated charge separation efficiency. This strategy provides new insights into the combination of microporous organic polymers with photocatalysts for solar-to-fuel conversion.
机译:已经致力于开发有效的可见光驱动的光催化剂,以将CO 2转化为化学燃料。该转化的光催化效率在很大程度上取决于CO 2的吸附和扩散。然而,由于它们的低比表面积和缺乏匹配的孔,在光催化剂表面上的CO 2吸附通常较低。在这里,我们报告了一种定义明确的多孔超交联聚合物-TiO2-石墨烯复合结构,具有较高的表面积,即988 m 2 g -1 ,CO2吸收能力为12.87重量%。该复合材料在温和的反应条件下,不使用牺牲试剂或贵金属化合物的情况下,表现出很高的光催化性能,特别是对于CH4的生产,即27.62μmolg -1 h -1 -催化剂。增强的CO2反应性可归因于其改善的CO2吸附和扩散,可见光吸收和光生电荷分离效率。该策略为将微孔有机聚合物与光催化剂结合用于太阳能转化为燃料提供了新的见解。

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