State Key Laboratory for Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, China.
Chem Soc Rev. 2019 Oct 14;48(20):5207-5241. doi: 10.1039/c9cs00422j.
Electrocatalysis plays an essential role in diverse electrochemical energy conversion processes that are vital for improving energy utilization efficiency and mitigating the aggravating global warming challenge. The noble metals such as platinum are generally the most frequently used electrocatalysts to drive these reactions and facilitate the relevant energy conversion processes. The high cost and scarcity of these materials pose a serious challenge for the wide-spread adoption and the sustainability of these technologies in the long run, which have motivated considerable efforts in searching for alternative electrocatalysts with reduced loading of precious metals or based entirely on earth-abundant metals. Of particular interest are graphene-supported single atom catalysts (G-SACs) that integrate the merits of heterogeneous catalysts and homogeneous catalysts, such as high activity, selectivity, stability, maximized atom utilization efficiency and easy separation from reactants/products. The graphene support features a large surface area, high conductivity and excellent (electro)-chemical stability, making it a highly attractive substrate for supporting single atom electrocatalysts for various electrochemical energy conversion processes. In this review, we highlight the recent advancements in G-SACs for electrochemical energy conversion, from the synthetic strategies and identification of the atomistic structure to electrocatalytic applications in a variety of reactions, and finally conclude with a brief prospect on future challenges and opportunities.
电催化在各种电化学能量转换过程中起着至关重要的作用,对于提高能源利用效率和缓解日益严重的全球变暖挑战至关重要。贵金属如铂通常是最常用的电催化剂,用于驱动这些反应并促进相关的能量转换过程。然而,这些材料的高成本和稀缺性对这些技术的广泛采用和长期可持续性构成了严重挑战,这促使人们积极寻找替代电催化剂,以减少贵金属的负载量或完全基于丰富的地球金属。特别值得关注的是石墨烯负载的单原子催化剂(G-SACs),它集成了多相催化剂和均相催化剂的优点,如高活性、选择性、稳定性、最大限度地提高原子利用率以及易于与反应物/产物分离。石墨烯载体具有大的表面积、高导电性和优异的(电)化学稳定性,使其成为支撑各种电化学能量转换过程中单原子电催化剂的极具吸引力的基底。在这篇综述中,我们重点介绍了 G-SACs 在电化学能量转换方面的最新进展,包括合成策略和原子结构的鉴定,以及在各种反应中的电催化应用,并最后简要展望了未来的挑战和机遇。