One-Pot Phyto-Mediated Synthesis of Fe2O3/Fe3O4 Binary Mixed Nanocomposite Efficiently Applied in Wastewater Remediation by Photo-Fenton Reaction

Catalysts Pub Date : 2024-07-20 DOI:10.3390/catal14070466
Amr A. Essawy, Tamer H. A. Hasanin, M. F. Hussein, E. F. El Agammy, A. E. I. Essawy
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Abstract

A binary Fe2O3/Fe3O4 mixed nanocomposite was prepared by phyto-mediated avenue to be suited in the photo-Fenton photodegradation of methylene blue (MB) in the presence of H2O2. XRD and SEM analyses illustrated that Fe2O3 nanoparticles of average crystallite size 8.43 nm were successfully mixed with plate-like aggregates of Fe3O4 with a 15.1 nm average crystallite size. Moreover, SEM images showed a porous morphology for the binary Fe2O3/Fe3O4 mixed nanocomposite that is favorable for a photocatalyst. EDX and elemental mapping showed intense iron and oxygen peaks, confirming composite purity and symmetrical distribution. FTIR analysis displayed the distinct Fe-O assignments. Moreover, the isotherm of the developed nanocomposite showed slit-shaped pores in loose particulates within plate-like aggregates and a mesoporous pore-size distribution. Thermal gravimetric analysis (TGA) indicated the high thermal stability of the prepared Fe2O3/Fe3O4 binary nanocomposite. The optical properties illustrated a narrowing in the band gab (Eg = 2.92 eV) that enabled considerable absorption in the visible region of solar light. Suiting the developed binary Fe2O3/Fe3O4 nanocomposite in the photo-Fenton reaction along with H2O2 supplied higher productivity of active oxidizing species and accordingly a higher degradation efficacy of MB. The solar-driven photodegradation reactions were conducted and the estimated rate constants were 0.002, 0.0047, and 0.0143 min−1 when using the Fe2O3/Fe3O4 nanocomposite, pure H2O2, and the Fe2O3/Fe3O4/H2O2 hybrid catalyst, respectively. Therefore, suiting the developed binary Fe2O3/Fe3O4 nanocomposite and H2O2 in photo-Fenton reaction supplied higher productivity of active oxidizing species and accordingly a higher degradation efficacy of MB. After being subjected to four photo-Fenton degradation cycles, the Fe2O3/Fe3O4 nanocomposite catalyst still functioned admirably. Further evaluation of Fe2O3/Fe3O4 nanocomposite in photocatalytic remediation of contaminated water using a mixture of MB and pyronine Y (PY) dyestuffs revealed substantial dye photodegradation efficiencies.
一锅植物介导合成 Fe2O3/Fe3O4 二元混合纳米复合材料,利用光-芬顿反应有效修复废水
通过植物介导途径制备了一种二元 Fe2O3/Fe3O4 混合纳米复合材料,适用于在 H2O2 存在下对亚甲基蓝(MB)进行光-芬顿(photo-Fenton)光降解。XRD 和 SEM 分析表明,平均结晶尺寸为 8.43 nm 的 Fe2O3 纳米颗粒与平均结晶尺寸为 15.1 nm 的 Fe3O4 板状聚集体成功混合。此外,扫描电子显微镜图像显示,Fe2O3/Fe3O4 二元混合纳米复合材料具有多孔形态,这对光催化剂十分有利。EDX 和元素图谱显示了强烈的铁峰和氧峰,证实了复合材料的纯度和对称分布。傅立叶变换红外分析显示了明显的铁-氧分配。此外,所开发的纳米复合材料的等温线显示,板状聚集体内的松散颗粒中存在狭缝状孔隙,孔径分布呈介孔状。热重分析(TGA)表明制备的 Fe2O3/Fe3O4 二元纳米复合材料具有很高的热稳定性。光学特性表明,带隙(Eg = 2.92 eV)变窄,从而在太阳光的可见光区实现了大量吸收。在光-芬顿反应中,将所开发的 Fe2O3/Fe3O4 二元纳米复合材料与 H2O2 一起使用,可提高活性氧化物种的生产率,从而提高甲基溴的降解效率。在太阳能驱动的光降解反应中,使用 Fe2O3/Fe3O4 纳米复合材料、纯 H2O2 和 Fe2O3/Fe3O4/H2O2 混合催化剂的速率常数分别为 0.002、0.0047 和 0.0143 min-1。因此,在光-芬顿反应中使用所开发的 Fe2O3/Fe3O4 纳米二元复合材料和 H2O2 可提供更高的活性氧化物种生产率,从而提高甲基溴的降解效率。经过四次光-芬顿降解循环后,Fe2O3/Fe3O4 纳米复合催化剂仍能发挥出色的功能。对 Fe2O3/Fe3O4 纳米复合材料在使用甲基溴和吡罗宁 Y(PY)染料混合物对污染水进行光催化修复方面的进一步评估显示,染料的光降解效率非常高。
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