Luo Haiqiang, Li Bo, Ma Jian-Gong, Cheng Peng
Department of Chemistry, Key Laboratory of Advanced Energy Material Chemistry, Renewable Energy Conversion and Storage Center, Frontiers Science Center for New Organic Matter, Haihe Laboratory of Sustainable Chemical Transformations (Tianjin), College of Chemistry, Nankai University, Tianjin 300071, China.
Chem Commun (Camb). 2024 Aug 27;60(70):9298-9309. doi: 10.1039/d4cc02619e.
The electrochemical carbon dioxide reduction reaction (eCORR) represents an effective means of achieving renewable energy storage and a supply of carbon-based raw materials. However, there are still great challenges in selectively producing specific hydrocarbon compounds. The unique ability of the copper (Cu) catalyst to promote proton-coupled electron transfer processes offers clear advantages in generating value-added products. This review presents molecular enhancement strategies for Cu-based catalysts for CO electroreduction. We also elucidate the principles of each strategy for enhancing eCORR performance, discuss the structure-activity relationships, and propose some promising molecular enhancement strategies. This review will provide guidance for the development of organic-inorganic hybrid Cu-based catalysts as high-performance CO electroreduction catalysts.
电化学二氧化碳还原反应(eCORR)是实现可再生能源存储和供应碳基原材料的有效手段。然而,在选择性生产特定烃类化合物方面仍存在巨大挑战。铜(Cu)催化剂促进质子耦合电子转移过程的独特能力在生成增值产品方面具有明显优势。本文综述了用于CO电还原的铜基催化剂的分子增强策略。我们还阐明了每种增强eCORR性能策略的原理,讨论了结构-活性关系,并提出了一些有前景的分子增强策略。本综述将为开发作为高性能CO电还原催化剂的有机-无机杂化铜基催化剂提供指导。