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Mechanism and Kinetics Study for Photocatalytic Oxidation Degradation: A Case Study for Phenoxyacetic Acid Organic Pollutant

机译:光催化氧化降解机理与动力学研究-以苯氧乙酸有机污染物为例

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Photocatalysis is a rapidly expanding technology for wastewater treatment, including a wide range of organic pollutants. Thus, understanding the kinetics and mechanism of the photocatalytic oxidation (PCO) for degradation of phenoxyacetic acid (PAA) is an indispensable component of risk assessment. In this study, we demonstrated that the central composite design (CCD) coupled with response surface methodology (RSM) was successfully employed to probe the kinetics and mechanism of PCO degradation for PAA using an efficient zinc oxide (ZnO) photocatalyst. In our current case study, four independent factors such as ZnO dosage, initial concentration of PAA, solution pH, and reaction time on the PCO degradation for PAA were examined in detail. Based on our results obtained from RSM analyses, an efficient pathway leading to the high degradation rate (>90%) was applying 0.4 g/L of ZnO dosage with 16 mg/L of concentration of PAA at pH 6.73 for 40 minutes. The experimental results were fitted well with the derived response model withR2= 0.9922. This study offers a cost-effective way for probing our global environmental water pollution issue.
机译:光催化是一种快速扩展的废水处理技术,其中包括多种有机污染物。因此,了解光催化氧化(PCO)降解苯氧乙酸(PAA)的动力学和机理是风险评估必不可少的组成部分。在这项研究中,我们证明了中央复合设计(CCD)与响应表面方法(RSM)结合使用有效的氧化锌(ZnO)光催化剂成功地用于探讨PCO降解PAA的动力学和机理。在我们当前的案例研究中,详细检查了四个独立的因素,例如ZnO用量,PAA的初始浓度,溶液pH值以及PAA降解PCO的反应时间。根据我们从RSM分析获得的结果,导致高降解率(> 90%)的有效途径是在0.43 g的pH 6.73下施加0.4 µg / L的ZnO剂量和16 µmg / L的PAA。实验结果与R2 = 0.9922的导出响应模型非常吻合。这项研究为探讨我们的全球环境水污染问题提供了一种经济有效的方法。

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