School of Engineering, The University of Edinburgh, The King's Buildings, Robert Stevenson Road, Edinburgh, EH9 3FB, United Kingdom.
School of Chemistry, The University of Edinburgh, Joseph Black Building, EH9 3FJ, United Kingdom.
J Environ Manage. 2020 Apr 15;260:110175. doi: 10.1016/j.jenvman.2020.110175. Epub 2020 Jan 25.
Although CuO is a commonly used narrow band gap semiconductor to fabricate visible response photocatalysts, up to date there are only a few reports on Ag co-catalysed TiO-CuO nanocomposites. Herein we report a facile wet chemical synthesis approach to prepare TiO-Ag-CuO ternary hybrid nanomaterials. Uniquely, both the effect of Ag content and the synthesis sequence of Ag deposition step was investigated on the visible decoloration rate. The crystal structure, morphology, optical and dark adsorption properties of the nanostructures were characterized by XRD, SEM, TEM and diffuse reflectance, respectively. Due to the mixed indirect and direct nature of the nanocomposites, the band gap estimation was performed by using both Tauc plot and differential reflectance model. The dark adsorption properties of catalysts could be typically well-approximated by pseudo-second order kinetics, while TiO-Ag(5%)-CuO catalyst cannot be described by standard models due to a delayed adsorption behaviour observed in the first 50 min. The apparent visible activities followed pseudo-zero order kinetics. It was found that TiO-Ag(3%)-CuO catalyst exhibited the highest rate constant which was ca. two times as high as that of the binary TiO-CuO catalyst. The synthesis sequence of the Ag deposition step significantly altered the material properties which resulted in different dark adsorption and apparent visible activities.
尽管氧化铜是一种常用的窄带隙半导体,用于制备可见光响应光催化剂,但目前仅有少数关于 Ag 共催化 TiO-CuO 纳米复合材料的报道。在此,我们报告了一种简便的湿化学合成方法,用于制备 TiO-Ag-CuO 三元杂化纳米材料。独特的是,Ag 含量的影响和 Ag 沉积步骤的合成顺序都对可见光褪色率有影响。通过 XRD、SEM、TEM 和漫反射分别对纳米结构的晶体结构、形貌、光学和暗吸附性能进行了表征。由于纳米复合材料具有混合的间接和直接性质,因此使用 Tauc 图和微分反射模型进行了能带隙估算。催化剂的暗吸附性能可以通过准二级动力学很好地近似,而 TiO-Ag(5%)-CuO 催化剂由于在前 50 min 观察到的吸附延迟行为而不能用标准模型来描述。可见的表观活性遵循准零级动力学。结果发现,TiO-Ag(3%)-CuO 催化剂表现出最高的速率常数,约为二元 TiO-CuO 催化剂的两倍。Ag 沉积步骤的合成顺序显著改变了材料性质,导致暗吸附和表观可见光活性不同。