Suppr超能文献

基于 Fc@rGO-ZnO 纳米复合材料在水相体系中对环丙沙星和磺胺甲恶唑抗生素的吸附和光催化降解一体化去除

Integrated adsorption and photocatalytic degradation based removal of ciprofloxacin and sulfamethoxazole antibiotics using Fc@rGO-ZnO nanocomposite in aqueous systems.

机构信息

Centre for Nanobiotechnology, VIT, Vellore, India; School of Biosciences and Technology, VIT, India.

School of Biosciences and Technology, VIT, India.

出版信息

Chemosphere. 2023 Aug;333:138912. doi: 10.1016/j.chemosphere.2023.138912. Epub 2023 May 12.

Abstract

Ferrocene functionalized rGO-ZnO nanocomposite was synthesized via the facile hydrothermal method. ZnO was reduced over the 3-dimensional rGO framework (3D-Fc@rGO) using Camellia sinensis extract. The Fc@rGO-ZnO nanocomposite was employed for pharmaceutical degradation (sulfamethoxazole (SMX) and ciprofloxacin (CIP)) in an aqueous solution under UV C light. The physicochemical properties of the as-prepared photocatalyst were characterized using FTIR, XRD, FESEM, EDS mapping, HR-TEM, XPS, and DR-UV Vis. The as-synthesized Fc@rGO-ZnO photocatalyst performed remarkably against pristine ZnO, with a fivefold increase in removal efficiency. This superior activity was attributed to its improved light harvesting, charge carrier interface, and enhanced charge separation. Additionally, the photocatalyst obeyed the Lagergen model for pseudo-first-order kinetics. Congruously, the integrated approach of Fc@rGO and ZnO as oxidizing agents was proficient in removing >95% of antibiotics (CIP and SMX) within 180 min. Furthermore, the heterostructure configuration developed between Fc@rGO and ZnO helps in charge migration and generation of abundant •OH and •O radicals for photodegradation activities. The toxicity assessment of the treated solutions showed improved cell viability in the algal strains of Scenedesmus and Chlorella sp. Moreover, this novel approach for the synthesis of a photoactive nanocomposite is found to be low-cost and reusable for three cycles. The nanocomposite is environmentally sustainable paving the way for practical applications in the treatment of different classes of antibiotics.

摘要

通过简便的水热法合成了二茂铁功能化 rGO-ZnO 纳米复合材料。使用茶叶提取物将 ZnO 还原到 3 维 rGO 骨架(3D-Fc@rGO)上。Fc@rGO-ZnO 纳米复合材料在 UV C 光下的水溶液中用于药物降解(磺胺甲恶唑(SMX)和环丙沙星(CIP))。使用 FTIR、XRD、FESEM、EDS 映射、HR-TEM、XPS 和 DR-UV Vis 对所制备的光催化剂的物理化学性质进行了表征。与原始 ZnO 相比,合成的 Fc@rGO-ZnO 光催化剂表现出色,去除效率提高了五倍。这种优异的活性归因于其改善的光捕获、载流子界面和增强的电荷分离。此外,光催化剂符合准一级动力学的 Lagergen 模型。同样,Fc@rGO 和 ZnO 作为氧化剂的集成方法能够在 180 分钟内有效去除 >95%的抗生素(CIP 和 SMX)。此外,Fc@rGO 和 ZnO 之间形成的异质结构有助于电荷迁移并产生丰富的•OH 和•O 自由基,从而促进光降解活性。处理溶液的毒性评估显示,藻类菌株 Scenedesmus 和 Chlorella sp. 的细胞活力得到改善。此外,这种用于合成光活性纳米复合材料的新方法具有成本效益,可重复使用三次。该纳米复合材料具有环境可持续性,为不同类别的抗生素的实际应用铺平了道路。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验