Yang Hu, Huang Jialu, Yang Hui, Guo Qiyang, Jiang Bei, Chen Jinxing, Yuan Xiaolei
School of Chemistry and Chemical Engineering, Nantong University, 9 Seyuan Road, Nantong, Jiangsu, 226019, P. R. China.
State Key Laboratory of Space Power-sources Technology, Shanghai Institute of Space Power-Sources, Shanghai, 200245, P. R. China.
Chem Asian J. 2022 Sep 14;17(18):e202200637. doi: 10.1002/asia.202200637. Epub 2022 Aug 9.
Ag-based nanocrystals have emerged as an important candidate for CO reduction reaction (CO RR) owing to the increasing amount of CO in the atmosphere, which has shown a propensity to alleviate environmental problems and produce high value-added chemicals. This paper reviews the surface and interface engineering of Ag-based catalysts towards CO RR, which involve in the morphology control, composition manipulation, and support effects. Various synthesis approaches are presented to discuss their influence on the size, crystal structure and morphology of Ag-based catalysts, including pure Ag NPs, Ag-based alloys, Ag/metal oxides composites as well as Ag/carbon materials. Next, the development of Ag-based surface and interface engineering that is essential to accelerate the formation of CO and its further conversion to C1 or even multicarbon products is systematically discussed. Finally, we give a short conclusion, and perspectives on the rational design of Ag-based catalysts based on surface and interface engineering will be discussed.
由于大气中一氧化碳含量不断增加,银基纳米晶体已成为一氧化碳还原反应(CO RR)的重要候选材料,该反应已显示出缓解环境问题和生产高附加值化学品的倾向。本文综述了银基催化剂用于CO RR的表面和界面工程,包括形貌控制、成分调控和载体效应。介绍了各种合成方法,以讨论它们对银基催化剂的尺寸、晶体结构和形貌的影响,包括纯银纳米颗粒、银基合金、银/金属氧化物复合材料以及银/碳材料。接下来,系统地讨论了银基表面和界面工程的发展,这对于加速CO的形成及其进一步转化为C1甚至多碳产物至关重要。最后,我们给出一个简短的结论,并将讨论基于表面和界面工程的银基催化剂合理设计的前景。