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Surface CuO, Bi2O3, and CeO2 species supported in TiO2-anatase: Study of Interface Effects in Toluene Photodegradation Quantum Efficiency

机译:TiO2-锐钛矿中负载表面CuO,Bi2O3和CeO2的研究:甲苯光降解量子效率界面效应的研究

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摘要

The enhancement of active triggered by surface deposition of Cu, Bi, and Ce containing oxidic species onto a high surface area anatase is analyzed through the calculation of the quantum efficiency for toluene photodegradation under UV and Sunlight-type illumination. To this end, series of Cu, Bi, and Ce containing oxides supported on anatase were synthesized having a growing content of the Cu, Bi, and Ce surface species and characterized with X-ray diffraction and photoelectron, UV-visible, and photoluminescence spectroscopies as well as transmission electron microscopy. Utilizing the surface concentration of Cu, Bi, and Ce species as a tool, we analyzed the influence of the system physicochemical properties affecting quantum efficiency in anatase-based materials. First, employing small surface concentrations of the Cu, Bi, and Ce species deposited onto (the unperturbed) anatase, we provided evidence that all steps of the photocatalytic event, including light absorption, charge recombination, as well as surface interaction with the pollutant and chemical output as to activity and selectivity have significance in the quantitative assessment of the enhancement of the efficiency parameter. Second, we analyzed samples rendering maximum quantum efficiency within all these series of materials. The study indicates that maximum enhancement over anatase displays a magnitude strongly dependent on the efficiency level of calculation and would thus require the use of the most accurate one, and that it occurs through a balance between optoelectronic and chemical properties of the composite materials. The (Cu, Bi, Ce) oxide-anatase interface plays a major role modulating the optoelectronic properties of the solids and thus the efficiency observable
机译:通过计算在紫外线和日光照射下甲苯光解的量子效率,分析了由含铜,铋和铈的氧化物种在高表面积锐钛矿上的表面沉积触发的活性增强。为此,合成了一系列由锐钛矿负载的含Cu,Bi和Ce的氧化物,这些氧化物具有越来越多的Cu,Bi和Ce表面物种,并通过X射线衍射和光电子,紫外可见和光致发光光谱进行了表征。以及透射电子显微镜。利用铜,铋和铈物种的表面浓度作为一种工具,我们分析了系统物理化学性质对基于锐钛矿型材料的量子效率的影响。首先,利用沉积在(无扰动的)锐钛矿上的低浓度的Cu,Bi和Ce物种,我们提供了证据表明光催化事件的所有步骤,包括光吸收,电荷重组以及与污染物和污染物的表面相互作用。关于活性和选择性的化学输出在定量评估效率参数的提高中具有重要意义。其次,我们分析了在所有这些系列材料中具有最大量子效率的样品。研究表明,锐钛矿的最大增强表现出强烈依赖于计算效率水平的大小,因此需要使用最精确的增强,并且这种增强是通过在复合材料的光电和化学性质之间取得平衡来实现的。 (Cu,Bi,Ce)氧化物-锐钛矿的界面起着调节固体光电特性的主要作用,因此可观察到效率

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