Synthesis of N-doped TiO2/SiO2/Fe3O4 magnetic nanocomposites as a novel purple LED illumination-driven photocatalyst for photocatalytic and photoelectrocatalytic degradation of naproxen: optimization and different scavenger agents study

Z. Amini, M. Givianrad, M. Saber-Tehrani, P. A. Azar, S. W. Husain
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引用次数: 13

Abstract

Abstract N-doped TiO2/SiO2/Fe3O4 as a new magnetic photocatalyst that is active in visible light has been prepared by simple sol–gel method. The prepared samples were characterized by XRD, FESEM, EDX, TEM, BET, BJH, VSM, XPS, FT-IR, and DRS–UV/Vis analysis. The photocatalytic effect of synthesized samples on naproxen degradation was studied. The operational parameters were optimized through central composite design to achieve maximum efficiency. The optimum values for maximum efficiency were obtained at pH of 4.29, catalyst mass of 0.06 g, naproxen concentration of 9.33 mg L−1, and irradiation time of 217.06 min. At these optimum conditions, the maximum photocatalytic degradation percentages of naproxen were found to be 96.32% at desirability function value of 1.0. Coupling the electrical current with the photocatalytic process proved that the electrical current was considerably efficient in decreasing the degradation time of removing the naproxen from aqueous solutions. The photocatalytic activity of the nanoparticles was also studied under sunlight. Considering the results provided by UV–Vis spectrophotometry and total organic carbon, it was found that the prepared samples are extraordinarily efficient to degrade naproxen under both purple LED and solar lights. Furthermore, the effect of different scavenger agents on naproxen degradation has been studied.
n掺杂TiO2/SiO2/Fe3O4磁性纳米复合材料的合成作为光催化和光电催化降解萘普生的新型紫色LED光催化剂:优化及不同清除剂的研究
摘要采用简单的溶胶-凝胶法制备了n掺杂TiO2/SiO2/Fe3O4作为一种新型可见光磁性光催化剂。采用XRD、FESEM、EDX、TEM、BET、BJH、VSM、XPS、FT-IR、DRS-UV /Vis等手段对制备的样品进行了表征。研究了合成样品对萘普生降解的光催化作用。通过中心复合设计优化操作参数,实现效率最大化。在pH = 4.29、催化剂质量为0.06 g、萘普生浓度为9.33 mg L−1、照射时间为217.06 min时,反应效率最高。在此条件下,萘普生的最大光催化降解率为96.32%,理想函数值为1.0。将电流与光催化过程耦合,证明了电流对降低萘普生在水溶液中的降解时间是相当有效的。研究了纳米颗粒在日光下的光催化活性。结合紫外可见分光光度法和总有机碳测定结果,发现所制备的样品在紫色LED和太阳能灯下对萘普生的降解效率都很高。此外,还研究了不同清除剂对萘普生降解的影响。
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