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首页> 外文期刊>RSC Advances >Photoelectrocatalytic application of palladium decorated zinc oxide-expanded graphite electrode for the removal of 4-nitrophenol: experimental and computational studies
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Photoelectrocatalytic application of palladium decorated zinc oxide-expanded graphite electrode for the removal of 4-nitrophenol: experimental and computational studies

机译:钯的光电催化剂在氧化锌膨胀石墨电极中去除4-硝基苯酚:实验和计算研究

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摘要

A novel Pd-ZnO-expanded graphite (EG) photoelectrode was constructed from a Pd-ZnO-EG nanocomposite synthesised by a hydrothermal method and characterised using various techniques such as X-ray diffractometry (XRD), Raman spectroscopy, UV-Vis diffuse reflectance spectroscopy, nitrogen adsorption-desorption analysis, transmission electron microscopy (TEM), scanning electron microscopy (SEM) and energy dispersive spectrometry (EDS). Cyclic voltammetry and photocurrent response measurements were also carried out on the electrode. The Pd-ZnO-EG electrode was employed in the photoelectrocatalytic removal of 4-nitrophenol as a target water pollutant at a neutral pH and with a current density of 7 mA cm(-2). Optical studies revealed that the Pd-ZnO-EG absorbed strongly in the visible light region. The Pd-ZnO-EG electrode showed improved photoelectrocatalytic activity in relation to ZnO-EG and EG electrodes for the removal of the 4-nitrophenol. The photocurrent responses showed that the Pd-ZnO-EG nanocomposite electrode could be employed as a good photoelectrode for photoelectrocatalytic processes and environmental remediation such as treatment of industrial waste waters. Density functional theory method was used to model the oxidative degradation of 4-nitrophenol by the hydroxyl radical which generates hydroquinone, benzoquinone, 4-nitrocatechol, 4-nitroresorcinol and the opening of the 4-nitrophenol ring. Furthermore, the hydroxyl radical is regenerated and can further oxidise the ring structure and initiate a new degradation process.
机译:一种新的PD-ZnO-膨胀石墨(例如)光电极由通过水热法合成的Pd-ZnO-例如纳米复合材料构成,并使用各种技术,例如X射线衍射法(XRD),拉曼光谱,UV-Vis弥射反射率光谱学,氮吸附 - 解吸分析,透射电子显微镜(TEM),扫描电子显微镜(SEM)和能量分散光谱(EDS)。还在电极上进行循环伏安法和光电流响应测量。将Pd-ZnO-例如电极用于光电催化剂在中性pH下作为靶水污染物作为靶水污染物,电流密度为7 mA cm(-2)。光学研究表明,Pd-ZnO-例如在可见光区域中强烈吸收。 PD-ZnO-例如电极显示有关ZnO-EB的改善的光电催化活性,例如用于除去4-硝基苯酚的电极。光电响应表明,Pd-ZnO-例如纳米复合材料可以用作光电催化过程的良好光电极和环境修复,例如工业废水的处理。密度函数理论方法用于通过羟基自由基模拟4-硝基苯酚的氧化降解,所述羟基酮产生氢醌,苯醌,4-硝基脲,4-硝基甲醇环和4-硝基苯酚环的开口。此外,再生羟基,可以进一步氧化环结构并引发新的降解过程。

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