Fresno Fernando, Villar-García Ignacio J, Collado Laura, Alfonso-González Elena, Reñones Patricia, Barawi Mariam, de la Peña O'Shea Víctor A
Photoactivated Processes Unit , IMDEA Energy Institute , Avda. Ramón de la Sagra 3 , Parque Tecnológico de Móstoles, 28935 Móstoles , Madrid , Spain.
J Phys Chem Lett. 2018 Dec 20;9(24):7192-7204. doi: 10.1021/acs.jpclett.8b02336. Epub 2018 Dec 18.
After 40 years of research on photocatalytic CO reduction, there are still many unknowns about its mechanistic aspects even for the most common TiO-based photocatalytic systems. These uncertainties include the pathways inducing visible-light activity in wide-band gap semiconductors, the charge transfer between semiconductors and plasmonic metal nanoparticles, the unambiguous determination of the origin of C-bearing products, the very first step in the activation of the CO molecule, the factors determining the selectivity, the reasons for photocatalyst deactivation, the closure of the catalytic cycle by the hole-scavenging reagent, and the detailed reaction pathways and the most suitable techniques for their determination. This Perspective discusses these controversial issues based on the most relevant investigations reported so far. For that purpose, we have tried to view the complex CO reduction in a holistic manner, considering today's state-of-the-art approaches, strategies, and techniques for the study of one of the hottest topics in energy research.
经过40年对光催化CO还原的研究,即使对于最常见的基于TiO的光催化体系,其机理方面仍有许多未知之处。这些不确定性包括在宽带隙半导体中诱导可见光活性的途径、半导体与等离子体金属纳米颗粒之间的电荷转移、含碳产物来源的明确确定、CO分子活化的第一步、决定选择性的因素、光催化剂失活的原因、空穴清除剂对催化循环的封闭作用,以及详细的反应途径和用于确定这些途径的最合适技术。本综述基于迄今为止报道的最相关研究,讨论了这些有争议的问题。为此,我们试图以整体的方式看待复杂的CO还原,同时考虑当今用于研究能源研究中最热门话题之一的最新方法、策略和技术。