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Tin as a co-catalyst for electrocatalytic oxidation and reduction reactions ( EI收录)
文献类型:期刊文献
英文题名:Tin as a co-catalyst for electrocatalytic oxidation and reduction reactions
作者:Gao, Mengyue[1]; Zhang, Xinyu[1]; Dai, Sheng[1]; Wang, Kuan-Wen[2]
机构:[1] Key Laboratory for Advanced Materials and Feringa Nobel Prize Scientist Joint Research Center, Institute of Fine Chemicals, School of Chemistry & Molecular Engineering, East China University of Science and Technology, Shanghai, 200237, China; [2] Institute of Materials Science and Engineering, Central University, Taoyuan, 320, Taiwan
年份:2023
卷号:11
期号:4
起止页码:1019
外文期刊名:Inorganic Chemistry Frontiers
收录:EI(收录号:20240415423655)
语种:英文
外文关键词:Carbon - Catalyst activity - Cost effectiveness - Cost reduction - Electrocatalysis - Electrocatalysts - Electrolytic reduction - Fossil fuels - Oxidation - Tin - Wind power
摘要:The current reliance on fossil fuels not only depletes vital resources but also poses significant environmental and health hazards. Therefore, by harnessing renewable electricity from sources like solar and wind energy, electrocatalytic technology emerges as a key solution for achieving zero carbon emissions in the production of value-added chemicals and fuels. Electrocatalytic oxidation and reduction offer a promising avenue in the carbon cycle. The incorporation of non-noble, cost-effective, and environmentally friendly metals into various electrocatalysts has attracted extensive attention. Among these, tin (Sn) as a co-catalyst exerts a substantial influence on representative electrocatalytic reactions, encompassing the oxygen reduction reaction (ORR), ethanol oxidation reaction (EOR), hydrogen evolution reaction (HER), and CO2 reduction reaction (CO2RR). This review presents a comprehensive overview of Sn's impact on both the structure and properties of electrocatalytic oxidation and reduction reactions, elucidating the involved reaction mechanisms in these four electrocatalytic processes and analyzing the distinct advantages conferred by Sn. However, current challenges associated with Sn as a co-catalyst revolve around achieving a delicate balance between the stability and activity of modified catalysts, particularly under acidic conditions. Nevertheless, Sn also offers opportunities for further advancements in selectivity, cost reduction, and the quest for alternatives to precious metals. Delving into Sn's role as a co-catalyst and pioneering novel strategies have an immense impact on ushering in a transformative era for green synthesis and energy production. ? 2024 The Royal Society of Chemistry.
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