CO_2的化学转化具有环境及科学双重研究意义.CO_2具有很高的化学稳定性,加氢还原是一种有效的转化途径.其中将CO_2选择性还原为CO,即逆水汽变换(RWGS)反应(CO_2+H_2→CO+H_2O),具有重要的理论意义和应用价值:(1)CO作为合成气的重要原料,可以通过F-T合成生产更有价值的液体燃料;(2)H_2可通过可再生能源电解水制取,实现了全过程的零排放碳循环利用.从热力学角度分析,RWGS反应是一个吸热反应,高温有利于平衡转化率的提高.从动力学角度,一个对正反应有活性的催化剂可同时催化逆反应进行.可还原性载体负载贵金属催化剂,如Pt/Ce O_2,Au/Fe Ox,Au/Ce O_2等,具有很好的低温WGS催化活性,但它们在RWGS反应上的研究较少.我们制备了Ce O_2负载纳米Au催化剂(HRTEM表征结果表明金高度分散于Ce O_2载体表面,粒径为4–5 nm),其在常压CO2加氢还原为CO反应中表现出优异的低温活性,分别在450℃,CO2/H2=1,WHSV=12000 m L/(h·g),及400℃,H2/CO2=1,WHSV=6000 m L/(h·g)条件下,CO2转化率接近平衡转化率,且CO的选择性为100%.随着H2/CO2比例增加,CO2转化率明显提高,且维持H2/CO2为1的化学计量比反应.通过原位漫反射红外光谱与质谱相结合的技术,研究了Au/CeO2催化剂上的RWGS反应路径:Au/CeO2催化剂表面形成了甲酸盐中间物种,它的消耗伴随着CO和H2O产物的生成.说明Au/CeO2催化剂遵循中间体机理,这应该是其具有优异低温RWGS反应性能的微观机制.
CO2 selective reduction to CO with H2 over a CeO2-supported nano-Au catalyst at atmospheric pres- sure was investigated. A high CO2 conversion, approaching the thermodynamic equilibrium value, and nearly 100% CO selectivity were obtained. The surface formate intermediates generated during the reverse water-gas shift reaction at 400 ℃ were identified using in situ diffuse-reflectance infra- red Fourier-transform spectroscopy. The formate consumption to give CO and H20, determined using mass spectrometry, indicated that the reaction proceeded via an associative formate mecha- nism; this contributes to the high Au/CeO2 catalytic activity at low temperatures.