Lobachevsky State University of Nizhny Novgorod, Gagarin Avenue 23, Nizhny Novgorod, 603950, Russian Federation.
Lobachevsky State University of Nizhny Novgorod, Gagarin Avenue 23, Nizhny Novgorod, 603950, Russian Federation.
Chemosphere. 2024 Jul;359:142316. doi: 10.1016/j.chemosphere.2024.142316. Epub 2024 May 10.
In recent years, the removal organic pollutants from wastewater by advanced oxidation processes, especially photocatalysis, has become a meaningful approach due to its eco-friendliness and low cost. Herein, staggered type-II BiWO/WO heterojunction photocatalysts were prepared by a facile hydrothermal route and investigated by modern physicochemical methods (X-ray diffraction, scanning electron microscopy, low-temperature nitrogen adsorption-desorption, and diffuse reflectance spectroscopy). The optimized BWOW-5 photocatalyst exhibited a HO-assisted photocatalytic methylene blue removal efficiency of 94.1% (k = 0.01414 min) within 180 min under optimal reaction conditions, which is much higher than that of unmodified BiWO and WO due to efficient separation of the photogenerated charge carriers. The trapping experiments demonstrated that photogenerated hydroxyl radicals and holes play a key role in the photodegradation reaction. Moreover, the optimized BWOW-5 heterojunction photocatalyst exhibited excellent activity in the HO-assisted degradation of other pollutants, namely phenol, isoniazid, levofloxacin, and dibenzothiophene with the removal rate of 63.1, 73.6, 95.0, and 72.4%, respectively. This investigation offers a design strategy for BiWO-based multifunctional photocatalytic composites with improved activity for organic pollutant degradation.
近年来,由于高级氧化工艺(尤其是光催化)具有环保和低成本的特点,其成为了一种从废水中去除有机污染物的有意义方法。在此,通过简便的水热路线制备了交错型 II 型 BiWO/WO 异质结光催化剂,并通过现代物理化学方法(X 射线衍射、扫描电子显微镜、低温氮吸附-脱附和漫反射光谱)进行了研究。在最佳反应条件下,优化后的 BWOW-5 光催化剂在 180 分钟内以 HO 辅助的方式去除亚甲基蓝的效率达到 94.1%(k=0.01414 分钟),远高于未改性的 BiWO 和 WO,这是由于光生载流子的有效分离。捕获实验表明,光生羟基自由基和空穴在光降解反应中起着关键作用。此外,优化后的 BWOW-5 异质结光催化剂在 HO 辅助下对其他污染物(苯酚、异烟肼、左氧氟沙星和二苯并噻吩)的降解也表现出优异的活性,去除率分别为 63.1%、73.6%、95.0%和 72.4%。这项研究为基于 BiWO 的多功能光催化复合材料的设计提供了一种策略,可提高其对有机污染物降解的活性。