Luo Zhicheng, Yin Zhouyang, Yu Jiaqi, Yan Yu, Hu Bing, Nie Renfeng, Kolln Anna F, Wu Xun, Behera Ranjan K, Chen Minda, Zhou Lin, Liu Fudong, Wang Bin, Huang Wenyu, Zhang Sen, Qi Long
U.S. DOE Ames Laboratory, Iowa State University, Ames, IA, 50011, USA.
Department of Chemistry, University of Virginia, Charlottesville, VA, 22904, USA.
Small. 2022 Apr;18(16):e2107799. doi: 10.1002/smll.202107799. Epub 2022 Mar 1.
The electrochemical carbon dioxide reduction reaction (CO RR) is a transformative technology to reduce the carbon footprint of modern society. Single-site catalysts have been demonstrated as promising catalysts for CO RR, but general synthetic methods for catalysts with high surface area and tunable single-site metal composition still need to be developed to unambiguously investigate the structure-activity relationship crossing various metal sites. Here, a generalized coordination-condensation strategy is reported to prepare single-atom metal sites on ordered mesoporous carbon (OMC) with high surface areas (average 800 m g ). This method is applicable to a broad range of metal sites (Fe, Co, Ni, Cu, Pt, Pd, Ru, and Rh) with loadings up to 4 wt.%. In particular, the CO RR to carbon monoxide (CO) Faradaic efficiency (FE) with Ni single-site OMC catalyst reaches 95%. This high FE is maintained even under large current density (>140 mA cm ) and in a long-term study (14 h), which suits the urgently needed large-scale applications. Theoretical calculations suggest that the enhanced activity on single-atom Ni sites results from balanced binding energies between key intermediates, COOH and CO, for CO RR, as mediated by the coordination sphere.
电化学二氧化碳还原反应(CO₂RR)是一项可减少现代社会碳足迹的变革性技术。单原子催化剂已被证明是有前景的CO₂RR催化剂,但仍需开发具有高表面积和可调单原子金属组成的催化剂的通用合成方法,以明确研究跨越各种金属位点的结构-活性关系。在此,报道了一种通用的配位缩合策略,用于在具有高表面积(平均800 m² g⁻¹)的有序介孔碳(OMC)上制备单原子金属位点。该方法适用于广泛的金属位点(Fe、Co、Ni、Cu、Pt、Pd、Ru和Rh),负载量高达4 wt.%。特别是,Ni单原子OMC催化剂将CO₂RR转化为一氧化碳(CO)的法拉第效率(FE)达到95%。即使在大电流密度(>140 mA cm⁻²)下和长期研究(14小时)中,这种高FE也能保持,这适合迫切需要的大规模应用。理论计算表明,单原子Ni位点上活性的增强源于关键中间体COOH和CO之间对于CO₂RR的平衡结合能,这是由配位球介导的。