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Photoelectrocatalytic degradation of pharmaceutical carbamazepine using Sb-doped Sn-80%-W-20%-oxide electrodes

机译:使用Sb掺杂的Sn-80%-W-20%-20%氧化物电极的药物卡吡啶的光电催化降解

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摘要

The continuous release of pharmaceutical compounds in the environment is of concern due to their potential toxicological effects on living organisms, even at low concentrations. The insufficient removal of bioactive contaminants such as pharmaceuticals by conventional wastewater treatment processes has led scientists to investigate and develop efficient technologies such as advanced oxidation processes (AOPs) to address the issue. The objective of the present work was to study the applicability of thermally prepared Sb-doped Sn-80%-W-20%-oxide thin film coated electrodes for the photoelectrocatalytic degradation of a recalcitrant pharmaceutical compound, carbamazepine (CBZ). The efficiency of photolytic and photocatalytic processes for removal of CBZ were also evaluated for comparison. The formation of transformation products was investigated and the results showed lower levels of transformation products in the water treated by the photoelectrocatalytic method compared to the photolytic and photocatalytic methods, by the end of 60-min treatment. This suggests a potentially lower overall toxicity of the final solution treated by the photoelectrocatalytic method. An estimation of the energy consumption to reach an order of magnitude reduction in the concentration of CBZ for each type of process indicated a lower energy requirement for the photoelectrocatalytic method, with the highest energy efficiency observed at the applied current density of 6 mA/cm(2). (C) 2017 Elsevier B.V. All rights reserved.
机译:由于它们对生物体的潜在毒理学影响,即使在低浓度下,环境中的药物化合物的连续释放是有关的。通过常规废水处理过程的去除生物活性污染物如药物的不充分,使科学家们旨在调查和开发高效的技术,如先进的氧化过程(AOP)来解决这个问题。本作研究的目的是研究热制备的Sb掺杂的Sn-80%-W-20%少量氧化薄膜涂覆电极的适用性,用于顽皮药物化合物,卡巴马嗪(CBZ)的光电催化降解。还评价了用于去除CBZ的光解和光催化过程的效率进行比较。研究了转化产物的形成,结果显示了通过60分钟的光解和光催化方法对光电催化方法进行的水处理水平的较低水平的转化产物。这表明通过光电催化法处理的最终溶液的潜在较低的整体毒性。估计每种类型的过程中CBZ浓度达到幅度级别的级别,表明了光电催化方法的较低能量要求,在6 mA / cm的施加电流密度下观察到的最高能量效率( 2)。 (c)2017 Elsevier B.v.保留所有权利。

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