Zhu Hongjian, Chen Yingying, Wang Zhongpeng, Liu Wei, Wang Liguo
School of Resources and Environment, Key Laboratory of Water Resources and Environmental Engineering in Universities of Shandong, University of Jinan 336 Nanxinzhuangxi Road Jinan 250022 PR China
RSC Adv. 2018 Apr 19;8(27):14888-14897. doi: 10.1039/c8ra02327a. eCollection 2018 Apr 18.
Nanosized copper-doped ceria CuCe catalysts with a large surface area and well-developed mesoporosity were synthesized by a surfactant-assisted co-precipitation method. The prepared catalysts with different Cu doping concentrations were characterized by XRD, DLS analysis, TEM, BET, Raman, H-TPR and DRIFTS techniques. The influence of Cu content on their catalytic performance for CO oxidation was also studied. The XRD results indicate that at a lower content, the Cu partially incorporates into the CeO lattice to form a CuCe solid solution, whereas a higher Cu doping causes the formation of bulk CuO. Copper doping favors an increase in the surface area of the CuCe catalysts and the formation of oxygen vacancies, thereby improving the redox properties. The CuCe samples exhibit higher catalytic performance compared to bare CeO and CuO catalysts. This is ascribed to the synergistic interaction between copper oxide and ceria. In particular, the CuCe catalyst shows the highest catalytic performance ( = 59 °C), as well as excellent stability. The DRIFTS results show that CO adsorbed on surface Cu (Cu-CO species) can easily react with the active oxygen, while stronger adsorption of carbonate-like species causes catalyst deactivation during the reaction.
通过表面活性剂辅助共沉淀法合成了具有大表面积和发达介孔结构的纳米级铜掺杂二氧化铈(CuCe)催化剂。采用XRD、DLS分析、TEM、BET、拉曼、H-TPR和DRIFTS技术对制备的不同铜掺杂浓度的催化剂进行了表征。还研究了铜含量对其CO氧化催化性能的影响。XRD结果表明,在较低含量时,铜部分掺入CeO晶格中形成CuCe固溶体,而较高的铜掺杂会导致形成块状CuO。铜掺杂有利于增加CuCe催化剂的表面积并形成氧空位,从而改善氧化还原性能。与纯CeO和CuO催化剂相比,CuCe样品表现出更高的催化性能。这归因于氧化铜和二氧化铈之间的协同相互作用。特别是,CuCe催化剂表现出最高的催化性能(T100 = 59 °C)以及优异的稳定性。DRIFTS结果表明,吸附在表面铜上的CO(Cu-CO物种)可以很容易地与活性氧反应,而类似碳酸盐物种的较强吸附会导致反应过程中催化剂失活。