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An efficient strategy for full mineralization of an azo dye in wastewater: a synergistic combination of solar thermo- and electrochemistry plus photocatalysis

机译:废水中偶氮染料完全矿化的有效策略:太阳能热化学与电化学加光催化的协同结合

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Herein, a synergistic combination of three flows, i.e. photo-flow, thermo-flow, and electro-flow, from solar energy was first constructed and then utilized for the mineralization of an azo dye in wastewater. Taking methyl orange as an example, the mineralization of the azo dye was theoretically and experimentally investigated. The results indicated that the oxidation efficiency of the photo-electro-thermo flows could reach up to 81.88% within 60?min, which was superior to those of the corresponding single flow or two flows, and full mineralization to CO2 was realized. The mechanism of mineralization was discussed by comparing the molecular conjugate chain detected by UV and the intermediate products identified by HPLC and GC. Non-linear regression was used to obtain the rate equation of methyl orange mineralization. A significant synergetic effect of solar thermo- and electrochemistry plus photocatalysis was observed. The evidence shows that the synergistic application of three flows from solar energy can greatly provide an effective way for the enhancement of the utilization of solar energy and the oxidation of azo dye pollutants.
机译:在此,首先构造了来自太阳能的三种流,即光流,热流和电流的协同组合,然后用于废水中偶氮染料的矿化。以甲基橙为例,对偶氮染料的矿化进行了理论和实验研究。结果表明,光电热流在60?min内的氧化效率可达81.88%,优于相应的单流或两流,完全矿化成CO 2 实现了。通过比较紫外检测到的分子共轭链与HPLC和GC鉴定出的中间产物,探讨了矿化机理。使用非线性回归获得甲基橙矿化速率方程。观察到太阳热化学和电化学加光催化的显着协同作用。证据表明,太阳能三股流的协同应用可为提高太阳能利用和偶氮染料污染物的氧化提供有效途径。

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