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Photocatalytic conversion of CO_2 and H_2O to useful fuels by nanostructured composite catalysis

机译:CO_2和H_2O对纳米结构复合催化剂的光催化转化为有用的燃料

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Cu-TiO2 nano-catalysis were successfully prepared using sol-gel method and used for solar photo-reduction of CO2 in gas and liquid phase. Adding Cu to TiO2 matrix modify its crystalline structure, improved its optical property and increased the photo-catalytic activity toward CO2 reduction. Incorporating Cu at an oxidation state of 2+ into TiO2 matrix generated a mixture of Anatase and Rutile structure with high surface area, increased oxygen vacancies and enhanced atomic mobility which improved CO2 photo-reduction in both phases. The highest CO2 photoreduction rate was observed to occur for Cu-TiO2 nano-catalyst with Cu loading of 1.5 wt%. Methanol was the most produced hydrocarbon amongst the products with a production rate of 4.0 mu mol.g-cat(-1).h(-1), followed by methane. Gas phase solar CO2 photo-reduction was effective and dependent on the gas relative humidity. CO2 and H2O mixture with relative humidity (%RH) = 30% generated CH4 and CO as the main products. At higher %RH, the main products were methane, hydrogen, methanol, ethanol, and acetaldehyde. Gas phase solar CO2 photoreduction is more effective than liquid phase in terms of hydrocarbons production rate, space yield, and quantum efficiencies. Results showed that solar photo-catalytic reduction can be successfully applied to reduce CO2 from the atmosphere.
机译:使用溶胶 - 凝胶法成功制备Cu-TiO2纳米催化,用于在气体和液相中用于太阳能光照的CO 2。将Cu加入TiO 2基质改变其结晶结构,改善了其光学性质,并增加了光催化活性朝向CO 2还原。在2+的氧化状态下将Cu掺入TiO 2基质中产生锐钛矿和金红石结构的混合物,具有高表面积,增加的氧空位和增强的原子迁移率,其改善了两相的光学减少的CO 2。观察到最高的CO 2光电速率为Cu-TiO2纳米催化剂,Cu-TiO2纳米催化剂为1.5wt%。甲醇是产品中最具生产的烃,其生产速率为4.0μmmol.g-cat(-1).h(-1),其次是甲烷。气相太阳能二氧化碳光度减少有效且取决于气体相对湿度。 CO 2和H 2 O混合物具有相对湿度(%RH)& = 30%的CH4和CO作为主要产品。在较高的%RH下,主要产物是甲烷,氢气,甲醇,乙醇和乙醛。在烃生产速率,空间产量和量子效率方面,气相太阳能CO2光电比液相更有效。结果表明,可以成功地应用太阳能光催化还原以减少大气中的二氧化碳。

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