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首页> 外文期刊>Chemical engineering journal >Z-scheme SnFe2O4-graphitic carbon nitride: Reusable, magnetic catalysts for enhanced photocatalytic CO2 reduction
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Z-scheme SnFe2O4-graphitic carbon nitride: Reusable, magnetic catalysts for enhanced photocatalytic CO2 reduction

机译:Z样方SNFE2O4-石墨碳氮化物:可重复使用的磁性催化剂,用于增强的光催化二氧化碳还原

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摘要

The challenge in developing suitable photocatalysts for converting CO2 to solar fuels is to achieve effective CO2 adsorption capacity and high charge separation efficiency. In this report, we demonstrate the construction of a Z-scheme photocatalyst composed of coupling graphitic carbon nitride (g-C3N4) and SnFe2O4 semiconductors (denoted as SFO-CN) based on theoretical calculations and the characterization of their performance in photocatalytic CO2 reduction. The Z-scheme SFO-CN composite shows an enhanced photocatalytic activity in the reduction of CO2 to CO, yielding a CO evolution rate of 7.56 mu mol/g/h without any cocatalyst and sacrifice reagent, which is 2.2 times higher than that of CN alone (3.45 mu mol/g/h). Additionally, the SFO-CN catalyst can be easily separated from its aqueous dispersions for recycled usage due to its room temperature ferromagnetism. Characterizations revealed that the enhanced photocatalytic reduction activity of SFO-CN can be ascribed to the following unique characteristics: (1) SFO promotes the CO2 adsorption on the catalyst surface; (2) the Z-scheme charge transfer efficiently enhances the separation of the electron-hole pairs and maintains the high reducibility of electrons in the SFO conduction band. This study creates new opportunities for SFO and other ferrimagnetic spinel-type complex oxides-based Z-scheme system for solar fuel generation.
机译:开发用于将CO2转换为太阳能燃料的合适光催化剂的挑战是实现有效的CO 2吸附能力和高电荷分离效率。在本报告中,我们证明基于理论计算的偶联碳氮化物(G-C3N4)和SNFE2O4半导体(表示为SFO-CN表示的Z方案光催化剂的构建及其在光催化二氧化碳还原中的性能的表征。 Z形方案SFO-CN复合材料显示出CO 2减少的增强的光催化活性,产生7.56μmol/ g / h的CO进化率,没有任何助催化剂和牺牲试剂,其比CN高2.2倍单独(3.45 mm mol / g / h)。另外,SFO-CN催化剂可以容易地与其水分散体分离,因为其室温铁磁性引起的再循环使用。表征揭示了SFO-CN的增强的光催化还原活性可以归因于以下独特的特性:(1)SFO促进催化剂表面上的CO 2吸附; (2)Z方案电荷转移有效增强了电子 - 空穴对的分离,并保持了SFO传导带中的电子的高再速度。本研究为SFO和其他基于晶石型复合氧化物的Z方案制造了用于太阳能燃料产生的新机遇。

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