Zhao Wanghui, Xu Gaomou, He Zhaochun, Cai Cheng, Abild-Pedersen Frank, Wang Tao
Center of Artificial Photosynthesis for Solar Fuels and Department of Chemistry, School of Science, Westlake University, 600 Dunyu Road, Hangzhou 310030, Zhejiang Province, China.
Institute of Natural Sciences, Westlake Institute for Advanced Study, 18 Shilongshan Road, Hangzhou 310024, Zhejiang Province, China.
J Am Chem Soc. 2023 Apr 5. doi: 10.1021/jacs.3c02180.
The catalytic carbon monoxide (CO) methanation is an ideal model reaction for the fundamental understanding of catalysis on the gas-solid interface and is crucial for various industrial processes. However, the harsh operating conditions make the reaction unsustainable, and the limitations set by the scaling relations between the dissociation energy barrier and dissociative binding energy of CO further increase the difficulty in designing high-performance methanation catalysts operating under milder conditions. Herein, we proposed a theoretical strategy to circumvent the limitations elegantly and achieve both facile CO dissociation and C/O hydrogenation on the catalyst containing a confined dual site. The DFT-based microkinetic modeling (MKM) reveals that the designed Co-Cr/G dual-site catalyst could provide 4-6 orders of magnitude higher turnover frequency for CH production than the cobalt step sites. We believe that the proposed strategy in the current work will provide essential guidance for designing state-of-the-art methanation catalysts under mild conditions.
催化一氧化碳(CO)甲烷化反应是从根本上理解气固界面催化作用的理想模型反应,对各种工业过程至关重要。然而,苛刻的操作条件使该反应难以持续,并且CO解离能垒与解离结合能之间的标度关系所带来的限制,进一步增加了设计在较温和条件下运行的高性能甲烷化催化剂的难度。在此,我们提出了一种理论策略,巧妙地规避这些限制,并在含有受限双位点的催化剂上实现CO的轻松解离和C/O氢化。基于密度泛函理论(DFT)的微观动力学建模(MKM)表明,所设计的Co-Cr/G双位点催化剂对于CH生成的周转频率比钴台阶位点高4-6个数量级。我们相信,当前工作中提出的策略将为在温和条件下设计先进的甲烷化催化剂提供重要指导。