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首页> 外文期刊>ChemCatChem >Effects of Au Loading and CO2 Addition on Photocatalytic Selective Phenol Oxidation over TiO2-Supported Au Nanoparticles
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Effects of Au Loading and CO2 Addition on Photocatalytic Selective Phenol Oxidation over TiO2-Supported Au Nanoparticles

机译:Au载荷和CO2添加对TiO2负载的Au纳米粒子光催化选择性酚氧化的影响

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摘要

The photocatalytic oxidation of aqueous phenol to hydroquinone on TiO2-supported Au nanoparticles (Au/P25) and P25 under solar simulator (>320nm) and monochromated light irradiation was conducted in air and under a CO2 atmosphere to investigate the effects of Au loading and CO2 atmosphere on the photocatalysis. The action spectrum in hydroquinone formation on Au/P25 under a CO2 atmosphere was in good agreement with the absorption spectrum of P25. A larger amount of hydroquinone formed and a smaller amount of CO2, which was the completely oxidized product of phenol, evolved if Au was loaded on P25. These observations indicated that this photocatalysis did not involve a visible light-induced step by the localized surface plasmon resonance of Au and Au loading did not improve the charge separation efficiency on P25 for the reaction. On the other hand, the amount of the surface titanol group on P25 decreased dramatically after Au loading, which was confirmed by analysis of the temperature-programmed desorption of ammonia curves for P25 and Au/P25. Comparison of the adsorption isotherms of hydroquinone from water on P25 and Au/P25 revealed that the surface modification of P25 with Au reduced the amount of hydroquinone adsorbed from a relatively low concentration solution dramatically. Moreover, the adsorption of hydroquinone from water on Au/P25 under various pH values was investigated to find that there was a partially opposite relationship between the pH-dependent hydroquinone adsorption and the CO2 pressure- (and possibly pH-)dependent photocatalytic hydroquinone formation on Au/P25. Similar results were obtained for the photocatalytic oxidation of aqueous benzene to phenol on Au/P25 under solar simulator irradiation. All results obtained suggested that Au nanoparticle loading on P25 promoted the desorption of the formed hydroquinone from the surface to prevent the successive oxidation of the product, and the presence of CO2 further promoted the hydroquinone desorption probably by lowering the pH of the reaction solution below the pKa of Au/P25.
机译:在空气中,在空气中并在太阳模拟器(> 320nm)和单色光照射下,在TiO 2负载的Au纳米粒子(Au / p25)和p25上的苯酚水溶液对氢醌(Au / p25)和p25的光催化氧化在二氧化碳气氛下进行CO 2的影响在光催化的气氛。在CO2气氛下AU / P25上的氢醌形成的动作光谱与P25的吸收光谱很好。大量的氢醌形成和较少量的CO 2,其是苯酚的完全氧化产物,如果Au加载在P25上。这些观察结果表明,该光催化不涉及通过Au的局部表面等离子体共振的可见光诱导的步骤,Au负载未提高对反应的P25上的电荷分离效率。另一方面,在Au载荷后P25上的表面钛醇组的量急剧下降,通过分析P25和Au / p25的氨曲线的温度编程解吸来证实。对P25和AU / P25水中水氢醌的吸附等温物的比较显示,具有Au的P25的表面改性将从相对低浓度溶液中吸附的氢醌的量急剧下降。此外,研究了在各种pH值下Au / p25上的水对水的氢醌吸附,以发现pH依赖性氢醌吸附与CO 2压力 - (以及可能pH-)依赖性光催化氢醌形成的部分相反的关系AU / P25。在太阳模拟器辐射下AU / P25上的苯氧化物水溶液对苯酚的光催化氧化得到类似的结果。所得到的所有结果表明,P25的Au纳米颗粒加载促进了所形成的氢醌的解吸,从表面促进了产物的连续氧化,并且通过降低了下方的反应溶液的pH,CO 2的存在进一步促进了氢醌解吸AU / P25的PKA。

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