Ma Qiansu, Ming Jie, Sun Xiang, Liu Na, Chen Guoping, Yang Yingnan
Graduate School of Life and Environmental Science, University of Tsukuba, 1-1-1 Tennodai, Tsukuba, Ibaraki 305-8572, Japan; School of Chemistry and Biological Engineering, and Daxing Research Institute, University of Science and Technology Beijing, Beijing 100083, China.
Graduate School of Life and Environmental Science, University of Tsukuba, 1-1-1 Tennodai, Tsukuba, Ibaraki 305-8572, Japan.
Chemosphere. 2022 Nov;306:135512. doi: 10.1016/j.chemosphere.2022.135512. Epub 2022 Jun 29.
Wastewater problems caused by antibiotics and bacteria contamination have become the primary environmental concern due to their harm to terrestrial organisms and health risk. To obtain the efficient removal approach of antibiotics and bacteria, visible driven advanced oxidation process by photocatalyst for the efficient removal and reducing waterborne disease was demonstrated in this study. 2D/2D GO-Ag/P/BWO heterostructure photocatalyst (GO: graphene oxide, Ag: Ag, AgO; P: BiPO; BWO: BiWO) were synthesized for effectively purification of antibiotics and bacteria contaminated wastewater. GO added in synthesis of BWO (1st-hydrothermal) and induced of Ag dopants (2nd-hydrothermal) of GO-Ag/P/BWO were fabricated separately and marked as GO-Ag/P/BWO and GO-Ag/P/BWO, characterized by different tests (FT-IR, XRD, Raman, XPS, SEM, TEM, TG, UV-VIS, PL, photocurrent density, and EIS). To testify the visible light driven photocatalytic activity of the fabricated photocatalysts, Rhodamine B (Rh B) and amoxicillin (AMX) was chosen as model emerging organic contaminants and antibiotics, respectively. While gram-negative strain Escherichia coli (E. coli) was selected as model waterborne bacteria. The results showed that GO-Ag/P/BWO photocatalyst was synthesized successfully, and possessed high crystallinity, low generated electron-hole recombination rate, and high photocurrent density. The system can produce energetic active species (h, O and OH), exhibiting a superior performance towards removal of Rh B, AMX and E. coli under visible light irradiation. Comparing to other reported GO modified Bi based photocatalyst, GO-Ag/P/BWO had stronger photocatalytic performance in degradation of Rh B, AMX and E. coli, which indicated its high prospects for practical application in environmental wastewater treatment.
抗生素和细菌污染导致的废水问题因其对陆地生物的危害和健康风险,已成为主要的环境问题。为了获得抗生素和细菌的有效去除方法,本研究展示了通过光催化剂进行可见光驱动的高级氧化过程,以实现高效去除并降低水传播疾病。合成了二维/二维GO-Ag/P/BWO异质结构光催化剂(GO:氧化石墨烯,Ag:银、氧化银;P:磷酸铋;BWO:钨酸铋),用于有效净化受抗生素和细菌污染的废水。在BWO合成(第一次水热法)中添加GO以及对GO-Ag/P/BWO进行Ag掺杂诱导(第二次水热法)是分别进行的,并标记为GO-Ag/P/BWO和GO-Ag/P/BWO,通过不同测试(傅里叶变换红外光谱、X射线衍射、拉曼光谱、X射线光电子能谱、扫描电子显微镜、透射电子显微镜、热重分析、紫外-可见光谱、光致发光光谱、光电流密度和电化学阻抗谱)对其进行表征。为了验证所制备光催化剂的可见光驱动光催化活性,分别选择罗丹明B(Rh B)和阿莫西林(AMX)作为典型的新兴有机污染物和抗生素。同时选择革兰氏阴性菌大肠杆菌(E. coli)作为典型的水传播细菌。结果表明,GO-Ag/P/BWO光催化剂成功合成,具有高结晶度、低电子-空穴复合率和高光电流密度。该体系能产生高能活性物种(h、O和OH),在可见光照射下对Rh B、AMX和大肠杆菌的去除表现出优异性能。与其他报道的GO修饰的铋基光催化剂相比,GO-Ag/P/BWO在Rh B、AMX和大肠杆菌降解方面具有更强的光催化性能,这表明其在环境废水处理实际应用中具有很高的前景。