Li Jiazhan, Chen Chang, Xu Lekai, Zhang Yu, Wei Wei, Zhao Erbo, Wu Yue, Chen Chen
Engineering Research Center of Advanced Rare Earth Materials, Department of Chemistry, Tsinghua University, Beijing 100084, P. R. China.
JACS Au. 2023 Feb 16;3(3):736-755. doi: 10.1021/jacsau.3c00001. eCollection 2023 Mar 27.
Single-atom catalysts (SACs) are emerging as the most promising catalysts for various electrochemical reactions. The isolated dispersion of metal atoms enables high density of active sites, and the simplified structure makes them ideal model systems to study the structure-performance relationships. However, the activity of SACs is still insufficient, and the stability of SACs is usually inferior but has received little attention, hindering their practical applications in real devices. Moreover, the catalytic mechanism on a single metal site is unclear, leading the development of SACs to rely on trial-and-error experiments. How can one break the current bottleneck of active sites density? How can one further increase the activity/stability of metal sites? In this Perspective, we discuss the underlying reasons for the current challenges and identify precisely controlled synthesis involving designed precursors and innovative heat-treatment techniques as the key for the development of high-performance SACs. In addition, advanced operando characterizations and theoretical simulations are essential for uncovering the true structure and electrocatalytic mechanism of an active site. Finally, future directions that may arise breakthroughs are discussed.
单原子催化剂(SACs)正成为各种电化学反应中最具前景的催化剂。金属原子的孤立分散使得活性位点密度高,且结构简化使其成为研究结构-性能关系的理想模型体系。然而,SACs的活性仍然不足,其稳定性通常较差,但却很少受到关注,这阻碍了它们在实际器件中的实际应用。此外,单个金属位点上的催化机制尚不清楚,导致SACs的发展依赖于反复试验的实验。如何突破当前活性位点密度的瓶颈?如何进一步提高金属位点的活性/稳定性?在这篇展望文章中,我们讨论了当前面临挑战的潜在原因,并确定了涉及设计前驱体和创新热处理技术的精确控制合成是高性能SACs发展的关键。此外,先进的原位表征和理论模拟对于揭示活性位点的真实结构和电催化机制至关重要。最后,讨论了可能产生突破的未来方向。