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Selective hydrogenation of CO2 gas to formic acid over nanostructured Ru-TiO2 catalysts

机译:纳米结构Ru-TiO2催化剂的CO2气体对甲酸的选择性氢化

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A series of ruthenium catalysts were synthesized using a well-established micro-emulsion protocol. All the catalysts were well characterized by sophisticated analytical techniques, such as XRD, BET surface area, XPS, TEM, H _(2) -TPR and CO-chemisorption measurements. Subsequently, the ruthenium catalysts were tested for the selective synthesis of formic acid followed by CO _(2) hydrogenation reaction. The influences of the matrix nature as well as the catalyst composition were also examined in detail. Ru with only a low loading on the TiO _(2) support was found to be highly active in terms of the formic acid quantity (TON/TOF) compared to a high loading of Ru over the TiO _(2) support. Apart from the Ru catalysts, we also synthesized a series of functionalized ionic liquids to apply them as a reaction medium, not only for the hydrogenation reaction but also to anchor the formic acid (hydrogenation product). Such advanced applications of ionic liquids helped to run the reaction in a more optimized way to obtain maximum selectivity in terms of a high TON/TOF value of formic acid with the added benefit of catalyst recycling for at least ten cycles.
机译:使用良好的微乳液方案合成了一系列钌催化剂。所有催化剂的特征在于,通过复杂的分析技术,例如XRD,BET表面积,XPS,TEM,H _(2)-TPR和共 - 化学吸取测量。随后,测试钌催化剂以选择性合成甲酸,然后进行CO _(2)氢化反应。还详细研究了基质性质以及催化剂组合物的影响。对于TiO _(2)载体上仅具有低负荷的Ru,与TiO _(2)载体的高负载高负载的Ru相比,在甲酸量(吨/ TOF)方面非常活跃。除了Ru催化剂外,还合成了一系列官能化离子液体,以将它们施加为反应介质,不仅用于氢化反应,还适用于锚定甲酸(氢化产物)。离子液体的这种先进的应用有助于以更优化的方式运行反应,以在甲酸的高吨/ TOF值方面获得最大选择性,其中催化剂再循环至少10个循环的增加的益处。

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