Department of Chemical Engineering, University of Patras, Caratheodory 1, University Campus, GR-26504 Patras, Greece.
Department of Physics and Astronomy, King Saud University, Riyadh, Saudi Arabia; Department of Automation Engineering, Technological Educational Institute of Pireaus, GR-12244 Athens, Greece.
J Hazard Mater. 2015 Aug 30;294:57-63. doi: 10.1016/j.jhazmat.2015.03.042. Epub 2015 Mar 23.
Photocatalytic and photoelectrocatalytic degradation of the drug omeprazole has been studied in the presence of nanocrystalline titania films supported on glass slides or transparent FTO electrodes in alkaline environment. Its photocatalytic degradation rate was assessed by its UV absorbance and by HPLC, while its transformation products were analyzed by HR-LC-MS. Based on UV absorbance, omeprazole can be photocatalytically degraded at an average rate of 6.7×10(-4)min(-1) under low intensity UVA irradiation of 1.5mWcm(-2) in the presence of a nanoparticulate titania film. This corresponds to degradation of 1.4mg of omeprazole per gram of the photocatalyst per liter of solution per hour. The photodegradation rate can be accelerated in a photoelectrochemical cell by applying a forward bias. In this case, the maximum rate reached under the present conditions was 11.6×10(-4)min(-1) by applying a forward bias of +0.6V vs. Ag/AgCl. Four major transformation products were successfully identified and their profiles were followed by HR-LC-MS. The major degradation path includes the scission of the sulfoxide bridge into the corresponding pyridine and benzimidazole ring derivates and this is accompanied by the release of sulfate anions in the reaction mixture.
在碱性环境中,研究了载玻片或透明 FTO 电极上负载的纳米晶二氧化钛薄膜对药物奥美拉唑的光催化和光电催化降解。通过其紫外吸收和 HPLC 评估其光催化降解速率,而通过高分辨 LC-MS 分析其转化产物。基于紫外吸收,在存在纳米颗粒二氧化钛薄膜的情况下,在 1.5mWcm(-2)低强度 UVA 照射下,奥美拉唑可以以平均 6.7×10(-4)min(-1)的速率光催化降解。这相当于每克光催化剂每升溶液每小时降解 1.4 毫克奥美拉唑。在光电化学电池中施加正向偏压可以加速光降解。在这种情况下,在目前的条件下,施加 +0.6V 对 Ag/AgCl 的正向偏压可以达到 11.6×10(-4)min(-1)的最大速率。成功鉴定了四个主要的转化产物,并通过高分辨 LC-MS 跟踪其谱图。主要的降解途径包括亚砜桥的断裂成相应的吡啶和苯并咪唑环衍生物,并且伴随着反应混合物中硫酸盐阴离子的释放。