Wu Jinghua, Huang Yang, Ye Wen, Li Yanguang
Institute of Functional Nano and Soft Materials (FUNSOM) Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices Soochow University Suzhou 215123 China.
Adv Sci (Weinh). 2017 Sep 12;4(11):1700194. doi: 10.1002/advs.201700194. eCollection 2017 Nov.
Increasing CO concentration in the atmosphere is believed to have a profound impact on the global climate. To reverse the impact would necessitate not only curbing the reliance on fossil fuels but also developing effective strategies capture and utilize CO from the atmosphere. Among several available strategies, CO reduction via the electrochemical or photochemical approach is particularly attractive since the required energy input can be potentially supplied from renewable sources such as solar energy. In this Review, an overview on these two different but inherently connected approaches is provided and recent progress on the development, engineering, and understanding of CO reduction electrocatalysts and photocatalysts is summarized. First, the basic principles that govern electrocatalytic or photocatalytic CO reduction and their important performance metrics are discussed. Then, a detailed discussion on different CO reduction electrocatalysts and photocatalysts as well as their generally designing strategies is provided. At the end of this Review, perspectives on the opportunities and possible directions for future development of this field are presented.
大气中一氧化碳(CO)浓度的增加被认为会对全球气候产生深远影响。要扭转这种影响,不仅需要减少对化石燃料的依赖,还需要制定有效的策略来捕获和利用大气中的CO。在几种可行的策略中,通过电化学或光化学方法减少CO特别具有吸引力,因为所需的能量输入有可能来自太阳能等可再生能源。在本综述中,对这两种不同但内在相关的方法进行了概述,并总结了在CO还原电催化剂和光催化剂的开发、工程设计以及理解方面的最新进展。首先,讨论了支配电催化或光催化CO还原的基本原理及其重要的性能指标。然后,详细讨论了不同的CO还原电催化剂和光催化剂及其一般的设计策略。在本综述的结尾,阐述了该领域未来发展的机遇和可能方向的观点。