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The role of the surface acidic/basic centers and redox sites on TiO2 in the photocatalytic CO2 reduction

氧化还原 化学 催化作用 光催化 碳纤维 光化学 反应机理 电子转移 人工光合作用 组合化学 纳米技术 无机化学 有机化学 材料科学 复合数 复合材料
作者
Laura Collado,Patricia Reñones,Javier Fermoso,Fernando Fresno,Leoncio Garrido,Virgínia Pérez-Dieste,Carlos Escudero,María D. Hernández‐Alonso,Juan M. Coronado,David P. Serrano,Víctor A. de la Peña O’Shea
出处
期刊:Applied Catalysis B-environmental [Elsevier]
卷期号:303: 120931-120931 被引量:57
标识
DOI:10.1016/j.apcatb.2021.120931
摘要

The development of sustainable processes for CO2 reduction to fuels and chemicals is one of the most important challenges to provide clean energy solutions. The use of sunlight as renewable energy source is an interesting alternative to power the electron transfer required for artificial photosynthesis. Even if redox sites are mainly responsible for this process, other reactive acidic/basic centers also contribute to the overall reaction pathway. However, a full understanding of the CO2 photoreduction mechanism is still a scientific challenge. In fact, the lack of agreement on standardized comparison criteria leads to a wide distribution of reported productions, even using the same catalyst, which hinders a reliable interpretation. An additional difficulty is ascertaining the origin of carbon-containing products and effect of surface carbon residues, as well as the reaction intermediates and products under real dynamic conditions. To determine the elusive reaction mechanism, we report an interconnected strategy combining in-situ spectroscopies, theoretical studies and catalytic experiments. These studies show that CO2 photoreduction productions are influenced by the presence of carbon deposits (i.e. organic molecules, carbonates and bicarbonates) over the TiO2 surface. Most importantly, the acid/base character of the surface and the reaction medium play a key role in the selectivity and deactivation pathways. This TiO2 deactivation is mainly initiated by the formation of carbonates and peroxo- species, while activity can be partially recovered by a mild acid washing treatment. We anticipate that these findings and methodology enlighten the main shadows still covering the CO2 reduction mechanism, and, most importantly, provide essential clues for the design of emergent materials and reactions for photo(electro)catalytic energy conversion.

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