Han Junxing, Bian Juanjuan, Sun Chunwen
CAS Center for Excellence in Nanoscience, Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing 100083, China.
School of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing 100049, China.
Research (Wash D C). 2020 Aug 14;2020:9512763. doi: 10.34133/2020/9512763. eCollection 2020.
Oxygen reduction reaction (ORR) plays significant roles in electrochemical energy storage and conversion systems as well as clean synthesis of fine chemicals. However, the ORR process shows sluggish kinetics and requires platinum-group noble metal catalysts to accelerate the reaction. The high cost, rare reservation, and unsatisfied durability significantly impede large-scale commercialization of platinum-based catalysts. Single-atom electrocatalysts (SAECs) featuring with well-defined structure, high intrinsic activity, and maximum atom efficiency have emerged as a novel field in electrocatalytic science since it is promising to substitute expensive platinum-group noble metal catalysts. However, finely fabricating SAECs with uniform and highly dense active sites, fully maximizing the utilization efficiency of active sites, and maintaining the atomically isolated sites as single-atom centers under harsh electrocatalytic conditions remain urgent challenges. In this review, we summarized recent advances of SAECs in synthesis, characterization, oxygen reduction reaction (ORR) performance, and applications in ORR-related HO production, metal-air batteries, and low-temperature fuel cells. Relevant progress on tailoring the coordination structure of isolated metal centers by doping other metals or ligands, enriching the concentration of single-atom sites by increasing metal loadings, and engineering the porosity and electronic structure of the support by optimizing the mass and electron transport are also reviewed. Moreover, general strategies to synthesize SAECs with high metal loadings on practical scale are highlighted, the deep learning algorithm for rational design of SAECs is introduced, and theoretical understanding of active-site structures of SAECs is discussed as well. Perspectives on future directions and remaining challenges of SAECs are presented.
氧还原反应(ORR)在电化学储能和转换系统以及精细化学品的清洁合成中起着重要作用。然而,ORR过程显示出动力学迟缓,需要铂族贵金属催化剂来加速反应。高成本、稀有储量和不理想的耐久性严重阻碍了铂基催化剂的大规模商业化。单原子电催化剂(SAECs)具有明确的结构、高本征活性和最大原子效率,自有望替代昂贵的铂族贵金属催化剂以来,已成为电催化科学中的一个新领域。然而,在苛刻的电催化条件下,精细制备具有均匀且高密度活性位点的SAECs、充分最大化活性位点的利用效率以及将原子隔离位点保持为单原子中心,仍然是紧迫的挑战。在这篇综述中,我们总结了SAECs在合成、表征、氧还原反应(ORR)性能以及在与ORR相关的过氧化氢生产、金属空气电池和低温燃料电池中的应用方面的最新进展。还综述了通过掺杂其他金属或配体来定制孤立金属中心的配位结构、通过增加金属负载量来富集单原子位点浓度以及通过优化质量和电子传输来设计载体的孔隙率和电子结构的相关进展。此外,强调了在实际规模上合成高金属负载量SAECs的通用策略,介绍了用于SAECs合理设计的深度学习算法,并讨论了对SAECs活性位点结构的理论理解。还提出了对SAECs未来方向和剩余挑战的展望。