Oxygen-vacancy-assisted construction of Ce–TiO2 aerogel for efficiently boosting photocatalytic CO2 reduction without any sacrifice agent

气凝胶 材料科学 光催化 Boosting(机器学习) 氧气 牺牲 化学工程 还原(数学) 纳米技术 催化作用 有机化学 计算机科学 化学 工程类 考古 几何学 机器学习 历史 数学
作者
Yu Xia,Jianwei Man,Xiaodong Wu,Shuntian Huang,Anqi Lu,Xiaodong Shen,Sheng Cui,Xiangbao Chen,Gengtao Fu
出处
期刊:Ceramics International [Elsevier BV]
卷期号:49 (4): 6100-6112 被引量:13
标识
DOI:10.1016/j.ceramint.2022.10.118
摘要

The development of efficient photocatalysts with high activity and high selectivity remains the biggest challenge limiting the development of photocatalysis. Herein, a novel Ce-doped TiO 2 aerogel (Ce–TiO 2 ) is synthesized via a simple one-step sol-gel technique, which integrates simultaneously supercritical drying, heat treatment, nano structuring, and self-diffusion for the formation of the Ce embedded in porous TiO 2 matrix with strong coupling. The Ce–TiO 2 aerogel exhibits typically homogeneous structures, and the resulting Ce–TiO 2 aerogel shows an extremely large BET specific surface area of 246.53 m 2 /g, which is responsible for the much-enhanced photocatalytic active sites. The incorporation of Ce has induced an impurity level in the band gap of the pristine TiO 2 aerogel, extending the light response range to the visible region. Meanwhile, the structural and compositional advantages are exploited to achieve fast separation and transfer of charge carriers. The yields of CH 4 and CO are 0.6 and 2.1 μmol/(g·h) under visible light without any additional co-catalysts or sacrificial agents, which are 1.4 and 15.6 times as high as those of pristine TiO 2 aerogel. In addition, the yields of CH 4 and CO are as high as 10.3 and 26.9 μmol/(g·h) under simulated solar spectrum conditions, which are 34.3 and 1.6 times as high as those of pristine TiO 2 aerogel. The density function theory (DFT) calculation confirms that the resulting Ce–TiO 2 aerogel enables efficient H 2 O and CO 2 adsorption and activation through the Ce cooperation and O vacancy, which greatly improves photocatalytic CO 2 reduction. This work reveals the development of aerogel photocatalyst for the photoreduction of CO 2 with H 2 O and CO 2 as feedstock.
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