Division of Fuel Cell & Energy Technology, Ningbo Institute of Material Technology and Engineering, Chinese Academy of Sciences, Ningbo 315201, Zhejiang, People's Republic of China.
Phys Chem Chem Phys. 2014 Mar 21;16(11):5106-12. doi: 10.1039/c3cp54963a.
Cobalt-based perovskite catalysts showed excellent performance towards NO-NO2 oxidation. We systematically investigated the influence of different levels of Cu-doping on the catalytic performance of hexagonal phase LaCoO3 (LaCo1-xCuxO3 (x = 0.1, 0.2, 0.3)) for NO oxidation. The catalytic activities of the oxide catalysts followed the sequence: LaCo0.9Cu0.1O3 > LaCoO3 > LaCo0.8Cu0.2O3 > LaCo0.7Cu0.3O3 where the highest NO conversion for LaCo0.9Cu0.1O3 was 82% at 310 °C. The relevant structural characterizations were conducted by XRD, BET, FTIR and TEM. The interaction between Co and Cu promoted the conversion of NO to NO2. Upon increasing the Cu doping content, a decrease of the performance resulted from the generation of isolated CuO on the surface of the oxides, confirmed using H2-TPR and XPS. Combined with first-principle calculations, we explored the reaction mechanism of NO oxidation on the surface and found that Cu doping would facilitate the reaction by decreasing the energy of oxygen vacancy formation and the NO2 desorption barrier from Co- or Cu-nitrite.
钴基钙钛矿催化剂在 NO-NO2 氧化方面表现出优异的性能。我们系统地研究了不同铜掺杂水平对六方相 LaCoO3(LaCo1-xCuxO3(x = 0.1、0.2、0.3))催化 NO 氧化性能的影响。氧化物催化剂的催化活性顺序为:LaCo0.9Cu0.1O3>LaCoO3>LaCo0.8Cu0.2O3>LaCo0.7Cu0.3O3,其中 LaCo0.9Cu0.1O3 的最高 NO 转化率为 82%,温度为 310°C。相关的结构表征采用 XRD、BET、FTIR 和 TEM 进行。Co 和 Cu 之间的相互作用促进了 NO 向 NO2 的转化。随着 Cu 掺杂含量的增加,由于氧化物表面上孤立的 CuO 的生成,性能下降,这一点使用 H2-TPR 和 XPS 得到了证实。结合第一性原理计算,我们探讨了表面上 NO 氧化的反应机制,发现 Cu 掺杂会通过降低氧空位形成能和 Co-或 Cu-亚硝酸盐中 NO2 解吸势垒来促进反应。