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用于有效降解四环素和布洛芬分子的白色 LED 活性 α-FeO/rGO 光催化纳米复合材料。

White LED active α-FeO/rGO photocatalytic nanocomposite for an effective degradation of tetracycline and ibuprofen molecules.

机构信息

Research and Development Centre, Bharathiar University, Coimbatore, 46, Tamil Nadu, India.

Postgraduate & Research Department of Physics, Mar Athanasius College (Autonomous), Kothamangalam, Kerala, India.

出版信息

Environ Res. 2022 Sep;212(Pt C):113301. doi: 10.1016/j.envres.2022.113301. Epub 2022 Apr 26.

Abstract

The formation of phase pure magnetically separable α-FeO and α-FeO/rGO nanostructures were achieved through a simple hydrothermal technique. The properties of synthesized materials were investigated through different analytical techniques. The formation of phase pure FO and FO/rGO nanostructures were confirmed by XRD analysis with crystallite size of about ∼42 nm and ∼65 nm, respectively. The morphological analysis reveals the formation of sphere-like nanoparticles with high agglomeration. The UV-DRS analysis clearly shows the enhanced visible-light activity of FO/rGO nanoparticles. The BET analysis revealed the mesoporous property of FO/rGO nanocomposite. The enhancement in the photoinduced charge transfer process is observed after including rGO nanoparticles with FO. The photocatalytic efficiency of nanomaterials was analyzed using tetracycline and ibuprofen as model organic pollutants under white LED irradiation. The enhanced photocatalytic degradation ability of FO/rGO nanocomposite is studied against both tetracycline and ibuprofen molecules.

摘要

通过简单的水热技术,成功制备出了相纯的磁性可分离α-FeO 和 α-FeO/rGO 纳米结构。通过不同的分析技术研究了合成材料的性能。XRD 分析证实了 FO 和 FO/rGO 纳米结构的形成,其结晶度分别约为 ∼42nm 和 ∼65nm。形态分析表明形成了具有高团聚的球型纳米粒子。UV-DRS 分析清楚地表明了 FO/rGO 纳米粒子的可见光活性增强。BET 分析表明 FO/rGO 纳米复合材料具有介孔性质。在包含 rGO 纳米粒子后,观察到光诱导电荷转移过程增强。在白色 LED 照射下,使用四环素和布洛芬作为模型有机污染物分析了纳米材料的光催化效率。研究了 FO/rGO 纳米复合材料对四环素和布洛芬分子的增强光催化降解能力。

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