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Synergistic effects of alpha-Fe2O3-TiO2 and Na2S2O8 on the performance of a non-thermal plasma reactor as a novel catalytic oxidation process for dimethyl phthalate degradation

机译:α-Fe2O3-TiO2和Na2S2O8对非热等离子体反应器的性能作为新型催化氧化方法的协同作用

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摘要

This study aims to evaluate the synergistic effect of alpha-Fe2O3-TiO2 nanocomposite and Na2S2O8 as the process enhancers for a non-thermal dielectric barrier discharge plasma reactor (NTP-DBD). Dimethyl phthalate (DMP), a priority and hazardous pollutant, was selected as the target pollutant to evaluate the efficacy of the studied catalytic process. A central composite design was used to determine the effects of model parameters including reaction time (x(1)), pH (x(2)), Na2S2O8 (denoted as persulfate) concentration (x(3)), alpha-Fe2O3-TiO2 nanocomposite concentration (x(4)), and applied voltage (x(5)). Among linear, quadratic, and interaction terms, the most effective factors were reaction time (x(1)), pH (x(2)(2)), and the interaction between pH and persulfate concentration (x(2):x(3)), respectively. According to optimization results, the complete degradation of DMP can be achieved at: reaction time of 5.2 min, an applied voltage of 14 kV, pH equal to 3, persulfate concentration of 2 mM.L-1, and nano-composite concentration of 1 g.L-1, while the single plasma process required about 19.4 min of reaction time. This study can demonstrate that the heterogeneous addition of alpha-Fe2O3-TiO2 nanocomposite coupled with persulfate into the NTP-DBD reactor could enhance the oxidation rate and potential of the studied process with their catalytic and synergistic effects.
机译:该研究旨在评估α-Fe2O3-TiO2纳米复合材料和Na2S2O8作为非热介质阻挡排出等离子体反应器(NTP-DBD)的过程增强剂的协同作用。选择邻苯二甲酸酯(DMP),优先级和危险污染物作为靶污染物,以评估所研究的催化过程的功效。中央复合设计用于确定模型参数的效果,包括反应时间(x(1)),pH(x(2)),Na 2 -2O8(表示为过硫酸盐)浓度(x(3)),α-Fe2O3-TiO2纳米复合浓度(X(4))和施加电压(X(5))。在线性,二次和相互作用术语中,最有效的因素是反应时间(x(1)),pH(x(2)(2))和pH和过硫酸盐浓度之间的相互作用(x(2):x( 3))分别。根据优化结果,DMP的完全降解可以在:5.2分钟的反应时间,施加电压14kV,pH值等于3,过硫酸盐浓度为2mm。 - 1,纳米复合浓度为1 GL-1,而单浆过程需要约19.4分钟的反应时间。该研究可以证明,具有过硫酸盐进入NTP-DBD反应器的α-Fe2O3-TiO2纳米复合材料的异质加入可以增强所研究过程的氧化速率和潜力,其催化和协同效应。

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