Facultad de Ingeniería, Arquitectura y Diseño-Universidad Autónoma de Baja California, C.P. 22860, Ensenada, Baja California, México.
Centro Conjunto de Investigación en Química Sustentable, UAEM-UNAM, C.P. 50200, Toluca, México.
Environ Sci Pollut Res Int. 2024 Nov;31(54):63161-63175. doi: 10.1007/s11356-024-35431-y. Epub 2024 Oct 30.
This work obtained zinc oxide nanoparticles (ZnO NPs) using organic components extracted from Waltheria americana at different concentrations. ZnO materials were subsequently applied in the photodegradation of two cationic dyes, Rhodamine B (RB) and methylene blue (MB), at different doses of catalyst and pH. The crystallinity and hexagonal Wurtzite structure of ZnO were established through XRD analysis. The Zn-O bond in the ZnO NPs was confirmed in the FTIR, with the characteristic signals observed in the fingerprint region at ~ 400 cm. SEM and TEM revealed the formation of quasi-spherical particles with an average size ranging from 2 to 12 nm, depending on extract concentrations during synthesis. UV-Vis studies indicated the optical bandgap of ZnO, with values below 3 eV, also dependent on extract concentration. PL analysis revealed the recombination of free excitons and defects in ZnO. Photocatalytic studies of ZnO materials demonstrated excellent degradation efficiency of RB and MB dyes, which was influenced by the extract concentration of NPs, while the degradation of MB was enhanced with a 1:1 dye-to-catalyst ratio under acidic conditions. In contrast, due to RB more complex structure, an increased ratio of 1:1 to 1:3 and acidic pH conditions improved its degradation. Green-synthesized ZnO NPs using photocatalysis techniques exhibit significant potential as eco-friendly alternatives for removing contaminants from water.
本工作采用不同浓度的南美蒲桃(Waltheria americana)中提取的有机成分合成了氧化锌纳米粒子(ZnO NPs)。随后,将 ZnO 材料应用于两种阳离子染料罗丹明 B(RB)和亚甲基蓝(MB)的光降解,催化剂和 pH 值用量不同。XRD 分析表明 ZnO 具有结晶性和六方纤锌矿结构。FTIR 证实了 ZnO NPs 中的 Zn-O 键,在指纹区观察到了特征信号,约在 400 cm 处。SEM 和 TEM 显示形成了准球形颗粒,平均粒径范围为 2 至 12nm,这取决于合成过程中提取浓度。UV-Vis 研究表明 ZnO 的光学带隙低于 3eV,这也取决于提取浓度。PL 分析表明 ZnO 中的自由激子和缺陷复合。ZnO 材料的光催化研究表明,RB 和 MB 染料具有优异的降解效率,这受 NPs 提取浓度的影响,而在酸性条件下,1:1 的染料与催化剂比例提高了 MB 的降解效率。相比之下,由于 RB 具有更复杂的结构,1:1 到 1:3 的比例增加和酸性 pH 条件改善了其降解。使用光催化技术绿色合成的 ZnO NPs 作为从水中去除污染物的环保替代品具有很大的潜力。