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Stabilization of nanosized titanium dioxide by cyclodextrin polymers and its photocatalytic effect on the degradation of wastewater pollutants

机译:环糊精聚合物稳定纳米二氧化钛及其对废水污染物降解的光催化作用。

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摘要

Advanced oxidation processes (AOPs) are considered highly competitive water treatment technologies for the removal of organic pollutants. Among AOP techniques, photocatalysis has recently been the most widely studied. Our aims were to investigate how the dispersion of nanosized titanium dioxide (nanoTiO2) applied in photodegradation-based procedures can be stabilized with cyclodextrins in order to obtain a new, more efficient photocatalyst for the purification of waters polluted by xenobiotics applying UV irradiation. During our work, on the one hand, we studied the behavior and stability of nanoTiO2 in cyclodextrin solutions. On the other hand, we used various monomer and polymer cyclodextrin derivatives, and assessed the options for nanoTiO2 stabilization in the presence of various salts and tap water on the basis of turbidity tests. The physical stability of nanoTiO2 dispersions is diminished in the presence of the salts found in tap water (and occurring also in surface waters and ground water) and they are precipitated immediately. This colloidal instability can be improved by cyclodextrin derivatives. Based on the results of our studies we have selected carboxymethyl β-cyclodextrin polymer (CMBCD-P) for stabilization of nanoTiO2 dispersions. The photocatalytic degradation of methylene blue and ibuprofen as model organic pollutants in various media (distilled water, NaCl solution and tap water) has been studied using nanoTiO2 as catalyst stabilized by CMBCD-P. CMBCD-P itself showed a catalytic effect on the UV degradation of methylene blue. In addition to enhancing the colloid stability of nanoTiO2 CMBCD-P showed also synergistic effects in catalyzing the photodecomposition process of the dye. On the other hand, ibuprofen as a model pharmaceutical, a pollutant of emerging concern (EP), was protected by CMBCD-P against the photocatalytic degradation showing that inclusion complex formation can result in opposite effects depending on the structure of the host–guest complex.
机译:先进的氧化工艺(AOP)被认为是用于去除有机污染物的极具竞争力的水处理技术。在AOP技术中,光催化最近已得到最广泛的研究。我们的目的是研究如何使用环糊精稳定用于光降解过程中的纳米二氧化钛(nanoTiO2)的分散体,从而获得一种新型的,更有效的光催化剂,用于纯化被紫外线照射的异生物所污染的水。在我们的工作中,一方面,我们研究了纳米TiO2在环糊精溶液中的行为和稳定性。另一方面,我们使用了各种单体和聚合物环糊精衍生物,并根据浊度测试评估了在各种盐和自来水存在下纳米TiO2稳定化的选择。在自来水中发现的盐(以及在地表水和地下水中也存在)存在的盐时,纳米TiO2分散体的物理稳定性会降低,并且会立即沉淀出来。这种胶体不稳定性可以通过环糊精衍生物来改善。根据我们的研究结果,我们选择了羧甲基β-环糊精聚合物(CMBCD-P)来稳定纳米TiO2分散体。以CMBCD-P稳定的纳米TiO2为催化剂,研究了在各种介质(蒸馏水,NaCl溶液和自来水中)中作为模型有机污染物的亚甲基蓝和布洛芬的光催化降解。 CMBCD-P本身对亚甲基蓝的紫外线降解具有催化作用。除了增强纳米TiO2的胶体稳定性外,CMBCD-P在催化染料的光分解过程中也显示出协同作用。另一方面,布洛芬作为一种模型药物,是新兴关注的污染物(EP),受到CMBCD-P的保护,不会发生光催化降解,这表明包合物的形成可根据宿主-客体复合物的结构产生相反的作用。 。

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