Xue Dongping, Xia Huicong, Yan Wenfu, Zhang Jianan, Mu Shichun
College of Materials Science and Engineering, Zhengzhou University, Zhengzhou, 450001, People's Republic of China.
State Key Laboratory of Inorganic Synthesis and Preparative Chemistry, and College of Chemistry, Jilin University, 2699 Qianjin Street, Changchun, 130012, People's Republic of China.
Nanomicro Lett. 2020 Oct 27;13(1):5. doi: 10.1007/s40820-020-00538-7.
Electrocatalytic carbon dioxide (CO) reduction (ECR) has become one of the main methods to close the broken carbon cycle and temporarily store renewable energy, but there are still some problems such as poor stability, low activity, and selectivity. While the most promising strategy to improve ECR activity is to develop electrocatalysts with low cost, high activity, and long-term stability. Recently, defective carbon-based nanomaterials have attracted extensive attention due to the unbalanced electron distribution and electronic structural distortion caused by the defects on the carbon materials. Here, the present review mainly summarizes the latest research progress of the construction of the diverse types of defects (intrinsic carbon defects, heteroatom doping defects, metal atomic sites, and edges detects) for carbon materials in ECR, and unveil the structure-activity relationship and its catalytic mechanism. The current challenges and opportunities faced by high-performance carbon materials in ECR are discussed, as well as possible future solutions. It can be believed that this review can provide some inspiration for the future of development of high-performance ECR catalysts.
电催化二氧化碳(CO)还原(ECR)已成为闭合破碎碳循环并临时存储可再生能源的主要方法之一,但仍存在稳定性差、活性低和选择性低等问题。而提高ECR活性最有前景的策略是开发低成本、高活性和长期稳定性的电催化剂。近年来,缺陷碳基纳米材料因其碳材料上的缺陷导致电子分布不平衡和电子结构畸变而受到广泛关注。在此,本综述主要总结了碳材料在ECR中构建不同类型缺陷(本征碳缺陷、杂原子掺杂缺陷、金属原子位点和边缘缺陷)的最新研究进展,揭示了结构-活性关系及其催化机理。讨论了高性能碳材料在ECR中面临的当前挑战和机遇,以及未来可能的解决方案。可以相信,本综述能够为高性能ECR催化剂的未来发展提供一些启示。