A Brief Photocatalytic Study of ZnO Containing Cerium towards Ibuprofen Degradation

光催化 光降解 氧化铈 核化学 水溶液 漫反射红外傅里叶变换 材料科学 可见光谱 拉曼光谱 扫描电子显微镜 过氧化氢 化学 光化学 无机化学 氧化物 催化作用 有机化学 复合材料 物理 光学 光电子学
作者
Alexandro S. Sá,Rodrigo P. Feitosa,Luzia Maria Castro Honório,R. Peña‐Garcia,Luciano C. Almeida,Juliana S. Dias,Lorena Portela Brazuna,Thiago Galeote Tabuti,Eduardo Rezende Triboni,Josy A. Osajima,Edson C. Silva-Filho
出处
期刊:Materials [MDPI AG]
卷期号:14 (19): 5891-5891 被引量:35
标识
DOI:10.3390/ma14195891
摘要

Ibuprofen (IBU) is one of the most-sold anti-inflammatory drugs in the world, and its residues can reach aquatic systems, causing serious health and environmental problems. Strategies are used to improve the photocatalytic activity of zinc oxide (ZnO), and thosethat involvethe inclusion of metalhave received special attention. The aim of this work was to investigate the influence of the parameters and toxicity of a photoproduct using zinc oxide that contains cerium (ZnO-Ce) for the photodegradation of ibuprofen. The parameters include the influence of the photocatalyst concentration (0.5, 0.5, and 1.5 g L−1) as well as the effects of pH (3, 7, and 10), the effect of H2O2, and radical scavengers. The photocatalyst was characterized by Scanning Electron Microscopy-Energy Dispersive Spectroscopy, Transmission electron microscopy, Raman, X-Ray Diffraction, surface area, and diffuse reflectance. The photocatalytic activity of ibuprofen was evaluated in an aqueous solution under UV light for 120 min. The structural characterization by XRD and SEM elucidated the fact that the nanoparticle ZnO contained cerium. The band gap value was 3.31 eV. The best experimental conditions for the photodegradation of IBU were 60% obtained in an acidic condition using 0.50 g L−1 of ZnO-Ce in a solution of 20 ppm of IBU. The presence of hydrogen peroxide favored the photocatalysis process. ZnO-Ce exhibited good IBU degradation activity even after three photocatalytic cycles under UV light. The hole plays akey role in the degradation process of ibuprofen. The toxicity of photolyzed products was monitored against Artemia salina (bioindicator) and did not generate toxic metabolites. Therefore, this work provides a strategic design to improve ZnO-Ce photocatalysts for environmental remediation.

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