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Response surface methodology (RSM) modeling to improve removal of ciprofloxacin from aqueous solutions in photocatalytic process using copper oxide nanoparticles (CuO/UV)

机译:响应面方法(RSM)模型,以改善光催化过程中氧化铜纳米粒子(CuO / UV)从光催化过程中除去Ciprofloxacin的去除

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摘要

Abstract Ciprofloxacin (CIP) antibiotic is considered as an emerging and biological resistant pollutant. This study aimed to improve of the removal of CIP from synthetic aqueous solutions in photocatalytic process through copper oxide nanoparticles as catalyst (CuO/UV). The effect of CIP concentration (10–200 mg/l), catalyst dosage included CuO (0.01–0.1 g/l) and pH (3–11) as independent variables on the COD removal efficiency as response in photocatalytic process using UV-C lamps with three different powers of 8, 15 and 30-W were optimized through the central composite design in response surface method using design-expert software. A second order model was selected as the best model with R2 values and lack of fit as 0.85 and 0.06 for lamp 8-W, 0.89 and 0.11 for lamp 15-W, and 0.86 and 0.19 for lamp 30-W, respectively. Optimum conditions were obtained in CIP concentration of 11.2 (mg/l), CuO dosage of 0.08 (g/l), and pH value of 8.17. In this condition, predicted maximum COD removal was respectively found 83.79, 93.18, and 98.90% for lamps 8, 15 and 30-W. According to the results, photocatalytic process using copper oxide nanoparticles can effectively compose CIP in aqueous solutions.
机译:摘要环丙沙星(CIP)抗生素被认为是一种新兴和生物抗性污染物。该研究旨在通过氧化铜纳米粒子作为催化剂(CuO / UV)来改善从光催化过程中的合成水溶液中的粘合剂。 CIP浓度(10-200mg / L),催化剂剂量包括CuO(0.01-0.1g / L)和pH(3-11)作为与光催化过程中的响应的独立变量为独立变量,使用UV-C使用设计专家软件,通过中央复合设计优化了具有8个不同功率的灯,通过中央复合设计进行了优化。选择二阶模型作为具有R2值的最佳模型,并且对于灯15-W,0.89和0.11,分别用于灯的8-W,0.89和0.11的灯具为0.85和0.06。在11.2(Mg / L)的CIP浓度,CUO剂量为0.08(g / l)的最佳条件,pH值为8.17。在这种情况下,灯8,15和30-W分别发现预测的最大COD去除,分别发现83.79,93.18和98.90%。根据结果​​,使用氧化铜纳米颗粒的光催化方法可以有效地在水溶液中构成CIP。

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