首页> 外文期刊>Desalination: The International Journal on the Science and Technology of Desalting and Water Purification >Photocatalytic degradation of an anthraquinone dye on immobilized TiO2 nanoparticles in a rectangular reactor: Destruction pathway and response surface approach
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Photocatalytic degradation of an anthraquinone dye on immobilized TiO2 nanoparticles in a rectangular reactor: Destruction pathway and response surface approach

机译:矩形反应器中固定化TiO2纳米粒子上蒽醌染料的光催化降解:破坏路径和响应面法

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摘要

In this work, photocatalytic degradation of an anthraquinone dye, CI. Acid Green 25 (AG25), under UV light irradiation using TiO2 nanoparticles in a rectangular photoreactor was studied. The investigated TiO2 was Millennium PC-500 (crystallites mean size 8 nm and surface area of 320.76 m~2/g) immobilized on glass plates. Response surface methodology (RSM) was employed to assess individual and interactive effects of the four main independent parameters (initial dye concentration, UV light intensity, flow rate and reaction time) on the decolorization efficiency. Central composite design was used for optimization of UV/TiO2 process. Predicted values of decolorization efficiency were found to be in good agreement with experimental values (R~2 = 0.9308 and Adj-R~2 = 0.8702). Optimization results showed that maximum decolorization efficiency was achieved at the optimum conditions: initial dye concentration 10 mg/L, UV light intensity 47.2 W/m~2, flow rate 100 mL/min and reaction time 200 min. Photocatalytic mineralization of AG25 was monitored by total organic carbon (TOC). The degradation pathway of AG25 was proposed based on the identified compounds by GC-MS technique.
机译:在这项工作中,蒽醌染料CI的光催化降解。在矩形光反应器中,使用TiO2纳米粒子在紫外光照射下研究了酸性绿25(AG25)。所研究的二氧化钛是固定在玻璃板上的Millennium PC-500(微晶平均尺寸为8 nm,表面积为320.76 m〜2 / g)。响应表面方法(RSM)用于评估四个主要独立参数(初始染料浓度,UV光强度,流速和反应时间)对脱色效率的个体和相互作用影响。中央复合设计用于优化UV / TiO2工艺。发现脱色效率的预测值与实验值非常吻合(R〜2 = 0.9308和Adj-R〜2 = 0.8702)。优化结果表明,在最佳条件下,染料初始浓度为10 mg / L,紫外光强度为47.2 W / m〜2,流速为100 mL / min,反应时间为200 min,可实现最大的脱色效率。通过总有机碳(TOC)监测AG25的光催化矿化。根据GC-MS鉴定出的化合物,提出了AG25的降解途径。

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