Li Pengsong, Zhu Qinggong, Liu Jiyuan, Wu Tianbin, Song Xinning, Meng Qinglei, Kang Xinchen, Sun Xiaofu, Han Buxing
Beijing National Laboratory for Molecular Sciences, CAS Laboratory of Colloid and Interface and Thermodynamics, CAS Research/Education Center for Excellence in Molecular Sciences, Center for Carbon Neutral Chemistry, Institute of Chemistry, Chinese Academy of Sciences Beijing 100190 China
School of Chemistry and Chemical Engineering, University of Chinese Academy of Sciences Beijing 100049 China.
Chem Sci. 2024 Jan 18;15(9):3233-3239. doi: 10.1039/d3sc06579k. eCollection 2024 Feb 28.
Urea electrosynthesis under ambient conditions is emerging as a promising alternative to conventional synthetic protocols. However, the weak binding of reactants/intermediates on the catalyst surface induces multiple competing pathways, hindering efficient urea production. Herein, we report the synthesis of defective CoO catalysts that integrate dual-functional sites for urea production from CO and nitrite. Regulating the reactant adsorption capacity on defective CoO catalysts can efficiently control the competing reaction pathways. The urea yield rate of 3361 mg h g was achieved with a corresponding faradaic efficiency (FE) of 26.3% and 100% carbon selectivity at a potential of -0.7 V the reversible hydrogen electrode. Both experimental and theoretical investigations reveal that the introduction of oxygen vacancies efficiently triggers the formation of well-matched adsorption/activation sites, optimizing the adsorption of reactants/intermediates while decreasing the C-N coupling reaction energy. This work offers new insights into the development of dual-functional catalysts based on non-noble transition metal oxides with oxygen vacancies, enabling the efficient electrosynthesis of essential C-N fine chemicals.
环境条件下的尿素电合成正成为传统合成方法的一种有前景的替代方案。然而,反应物/中间体在催化剂表面的弱吸附会引发多种竞争途径,阻碍尿素的高效生产。在此,我们报道了一种缺陷型CoO催化剂的合成,该催化剂整合了用于由CO和亚硝酸盐生产尿素的双功能位点。调节反应物在缺陷型CoO催化剂上的吸附能力可以有效地控制竞争反应途径。在相对于可逆氢电极-0.7 V的电位下,实现了3361 mg h g的尿素产率,相应的法拉第效率(FE)为26.3%,碳选择性为100%。实验和理论研究均表明,氧空位的引入有效地触发了匹配良好的吸附/活化位点的形成,优化了反应物/中间体的吸附,同时降低了C-N偶联反应能。这项工作为基于具有氧空位的非贵金属过渡金属氧化物的双功能催化剂的开发提供了新的见解,实现了重要C-N精细化学品的高效电合成。