首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Construction of Bi2WO6/RGO/g-C3N4 2D/2D/2D hybrid Z-scheme heterojunctions with large interfacial contact area for efficient charge separation and high-performance photoreduction of CO2 and H2O into solar fuels
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Construction of Bi2WO6/RGO/g-C3N4 2D/2D/2D hybrid Z-scheme heterojunctions with large interfacial contact area for efficient charge separation and high-performance photoreduction of CO2 and H2O into solar fuels

机译:用大型界面接触区域构建Bi2WO6 / RGO / G-C3N4 2D / 2D / 2D杂交Z方案的异质结,用于高效电荷分离和CO2和H2O的高性能光电进入太阳能燃料

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摘要

We have rationally constructed a hybrid heterojunction comprising of Bi2WO6, reduced graphene oxide, and g-C3N4 (BWO/RGO/CN) with a 2D/2D/2D configuration for efficient photoreduction to generate solar fuels. These heterojunctions displayed dramatically improved performance towards CO2 reduction to generate CO and CH4 under visible-light irradiation, compared to the base material (CN), P25 as reference, as well as binary BWO/CN and RGO/CN heterojunctions. Particularly, the BWO/RGO/CN heterojunctions with 1 wt. % RGO and 15 wt. % BWO achieved record performance in the yields of carbonaceous products (CO + CH4) compared to other synthesized catalysts, with a selectivity of 92% against H-2. The remarkable photocatalytic performance was mainly attributed to the unique 2D/2D/2D architecture that creates large interfacial contact between the constituent materials for rapid charge transfer, to hinder the direct recombination of photoinduced electrons and holes. Notably, RGO played two significant roles: as a supporter to capture the electrons from CN, and as a redox mediator to promote the Z-scheme charge transfer between CN and BWO. The result is a greater extent of charge separation in the present BWO/RGO/CN heterojunction system, as evidenced by the photoluminescence, photocurrent responses, and electron microscopy findings. More importantly, the heterojunctions displayed excellent stability during recycling tests with no obvious loss in the generation of CO and CH4 from photoreduction of CO2. This interesting interfacial engineering approach presented herein offers a promising route for the rational design of a new class of layered multicomponent heterojunctions with 2D/2D/2D architecture for various applications in environmental protection and solar energy conversion.
机译:我们合理地构建了一种杂交异质结,其包括具有2D / 2D / 2D构造的Bi2WO6,氧化物氧化物和G-C3N4(BWO / RGO / CN),以便有效地拍摄以产生太阳能燃料。与基材(CN),P25作为参考的基础材料(CN),P25以及二进制BWO / CN和RGO / CN杂交相比,这些异质结显着改善了在可见光照射下产生CO和CH4的CO 2和CH4。特别是,BWO / RGO / CN异质结合1重量%。 %rgo和15 wt。与其他合成催化剂相比,%BWO在碳质产物(CO + CH4)的产率中实现了记录性能,其选择性为92%逆H-2。显着的光催化性能主要归因于唯一的2D / 2D / 2D架构,其在组成材料之间产生大的界面接触,用于快速电荷转移,妨碍光导电的电子和孔的直接重组。值得注意的是,RGO发挥了两种重要作用:作为捕获CN的电子和作为氧化还原介质以促进CN和BWO之间的Z方案电荷转移的支持者。结果是本发明的BWO / RGO / CN异质结系统中的电荷分离的更大程度,如光致发光,光电流反应和电子显微镜发现所证明。更重要的是,异质结在再循环试验期间显示出优异的稳定性,从CO 2的光电射击产生CO和CH4的产生没有明显损失。本文提供的这种有趣的界面工程方法提供了具有2D / 2D / 2D架构的新类别分层多组分异质功能的合理设计,用于环境保护和太阳能转换的各种应用。

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