可扩展性
过程(计算)
可再生能源
工艺工程
经济短缺
纳米技术
计算机科学
生化工程
材料科学
工程类
电气工程
语言学
数据库
操作系统
哲学
政府(语言学)
作者
Zeyu Guo,F.F. Yang,Xiaotong Li,Huiwen Zhu,Hainam Do,Kam Loon Fow,Jonathan D. Hirst,Tao Wu,Qiulin Ye,Yaqi Peng,Hao Bin Wu,Angjian Wu,Mengxia Xu
标识
DOI:10.1016/j.jechem.2023.11.019
摘要
The global concerns of energy crisis and climate change, primarily caused by carbon dioxide (CO2), are of utmost importance. Recently, the electrocatalytic CO2 reduction reaction (CO2RR) to high value-added multi-carbon (C2+) products driven by renewable electricity has emerged as a highly promising solution to alleviate energy shortages and achieve carbon neutrality. Among these C2+ products, ethylene (C2H4) holds particular importance in the petrochemical industry. Accordingly, this review aims to establish a connection between the fundamentals of electrocatalytic CO2 reduction reaction to ethylene (CO2RR-to-C2H4) in laboratory-scale research (lab) and its potential applications in industrial-level fabrication (fab). The review begins by summarizing the fundamental aspects, including the design strategies of high-performance Cu-based electrocatalysts and advanced electrolyzer devices. Subsequently, innovative and value-added techniques are presented to address the inherent challenges encountered during the implementations of CO2RR-to-C2H4 in industrial scenarios. Additionally, case studies of the techno-economic analysis of the CO2RR-to-C2H4 process are discussed, taking into factors such as cost-effectiveness, scalability, and market potential. The review concludes by outlining the perspectives and challenges associated with scaling up the CO2RR-to-C2H4 process. The insights presented in this review are expected to make a valuable contribution in advancing the CO2RR-to-C2H4 process from lab to fab.
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