Fabrication of flower-globular Bi2WO6/BiOI@Ag3PO4 photocatalyst for the degradation of bisphenol A and cefepime under sunlight: Photoelectric properties, degradation performance, mechanism and biodegradability enhancement

降级(电信) 光催化 头孢吡肟 双酚A 生物降解 材料科学 化学工程 光化学 化学 核化学 有机化学 催化作用 环氧树脂 工程类 抗生素耐药性 抗生素 电信 亚胺培南 生物化学 计算机科学
作者
Yanyang Chu,Baoyu Miao,Xianglei Zheng,Hongzhao Su
出处
期刊:Separation and Purification Technology [Elsevier BV]
卷期号:272: 118866-118866 被引量:58
标识
DOI:10.1016/j.seppur.2021.118866
摘要

A flower-globular photocatalyst (Bi2WO6/[email protected]3PO4-5) with symmetric double-heterojunction structure and low Ag-content was successfully fabricated for the first time by precipitation and one-step hydrothermal process. The loading of Ag3PO4 evidently enhanced the photoelectric properties of photocatalysts. Bi2WO6/[email protected]3PO4-5 provided an ideal photocatalytic activity towards the degradation of bisphenol A (BPA) and cefepime under simulated sunlight, and it also exhibited well photocatalytic stability. For BPA degradation, the recommend photocatalyst provided nearly 100% of degradation efficiency and 65.4% TOC removal by the simulated sunlight irradiation of 120 min, while for cefepime degradation, it offered the degradation efficiency of 98.2% and the TOC removal efficiency of 33.4%. The mechanism of photocatalytic activity enhancement was owing to the loading of Ag3PO4 and the developed double-heterojunction structure, by which the absorbance of visible light, the separation of electron/hole (e–/h+) pairs and carrier mobility were enhanced evidently. It was found that superoxide anion radical (∙O2–) played the major role in BPA degradation, while hydroxyl radical (∙OH) and hole (h+) together played the key role in cefepime degradation. The two pathways for BPA and cefepime degradation were respectively proposed by identifying the byproducts formed during the degradation. In addition, it was found that the photocatalytic degradation of cefepime evidently enhanced the biodegradability of the solution.
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