Wang Zihong, Li Yecheng, Ma Zhihao, Wang Dazhuang, Ren Xiaodi
School of Chemistry and Materials Science, University of Science and Technology of China, Anhui 230026, China.
iScience. 2024 Jul 2;27(8):110437. doi: 10.1016/j.isci.2024.110437. eCollection 2024 Aug 16.
The electrochemical conversion of carbon dioxide (CO) to valuable chemicals is gaining significant attention as a pragmatic solution for achieving carbon neutrality and storing renewable energy in a usable form. Recent research increasingly focuses on designing electrocatalysts that specifically convert CO into ethanol, a desirable product due to its high-energy density, ease of storage, and portability. However, achieving high-efficiency ethanol production remains a challenge compared to ethylene (a competing product with a similar electron configuration). Existing electrocatalytic systems often suffer from limitations such as low energy efficiency, poor stability, and inadequate selectivity toward ethanol. Inspired by recent progress in the field, this review explores fundamental principles and material advancements in CO electroreduction, emphasizing strategies for ethanol production over ethylene. We discuss electrocatalyst design, reaction mechanisms, challenges, and future research directions. These advancements aim to bridge the gap between current research and industrialized applications of this technology.
将二氧化碳(CO₂)电化学转化为有价值的化学品作为实现碳中和以及以可用形式存储可再生能源的务实解决方案正受到广泛关注。近期研究越来越聚焦于设计能将CO₂特异性转化为乙醇的电催化剂,乙醇因其高能量密度、易于储存和便携性而成为理想产物。然而,与乙烯(一种具有相似电子构型的竞争产物)相比,实现高效乙醇生产仍然是一项挑战。现有的电催化系统常常存在诸如能量效率低、稳定性差以及对乙醇的选择性不足等局限性。受该领域近期进展的启发,本综述探讨了CO₂电还原的基本原理和材料进展,着重强调了乙醇相对于乙烯生产的策略。我们讨论了电催化剂设计、反应机理、挑战以及未来的研究方向。这些进展旨在弥合该技术当前研究与工业化应用之间的差距。