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Preparation and Characterization of Fe3O4/SiO2/TiO2 Composite for Methylene Blue Removal in Water

机译:水中亚甲蓝去除Fe3O4 / SiO2 / TiO2复合材料的制备与表征

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The main problem with the slurry process is the difficulty in recovering the photocatalyst nanoparticle from water following purification. An alternative solution proposed the photocatalyst be immobilized on magnetic carriers, which would allow them to be recollected from the water suspension following treatment using an external magnetic field. Magnetically photocatalyst composites were prepared using simple heteroagglomeration by applying attractive electrostatic forces between the nanoparticles with an opposite surface charge. The Fe3O4/SiO2/TiO2 photocatalysts were synthesized in an aqueous slurry solution containing Fe3O4/SiO2 and TiO2 nanoparticles under pH 5 conditions. Meanwhile, Fe3O4/SiO2 was prepared by a simple procedure via a coprecipitation of iron(II) and iron(III) ion mixtures in ammonium hydroxide and was leached by sodium silicate. The synthesized samples were investigated to determine the phase structure, the magnetic properties, and the morphology of the composites by X-ray diffraction (XRD), vibrating sample magnetometer (VSM), and transmission electron microscopy (TEM), respectively. The results indicated that the composites contained anatase and rutile phases and exhibited a superparamagnetic behavior. Fe3O4/SiO2 particles, which were of the aggregation spherical form at 20 nm in size, were successfully attached onto the TiO2 surface. The catalytic activity of Fe3O4/SiO2/TiO2 composites was evaluated for the degradation of methylene blue under ultraviolet (UV) irradiation. The presence of SiO2 as a barrier between Fe3O4 and TiO2 is not only improves the photocatalytic properties but also provides the ability to adsorb the properties on the composite. The Fe3O4/SiO2/TiO2 (50% containing TiO2 in composite) were able to eliminate 87.3% of methylene blue in water through the adsorption and photocatalytic processes. This result is slightly below pure TiO2, which is able to degrade 96% of methylene blue. The resulting Fe3O4/SiO2/TiO2 composite exhibited an excellent ability to remove dye from water and it is easily recollected using a magnetic bar from the water. Therefore, they have high potency as an efficient and simple implementation for the dye effluent decolorization of textile waste in slurry reactor processes.
机译:淤浆法的主要问题是纯化后难以从水中回收光催化剂纳米颗粒。另一种解决方案提出将光催化剂固定在磁性载体上,这将使它们在使用外部磁场处理后从水悬浮液中回收。磁性光催化剂复合材料是使用简单的异质团聚制备的,方法是在具有相反表面电荷的纳米颗粒之间施加有吸引力的静电力。在pH 5的条件下,在含有Fe3O4 / SiO2和TiO2纳米粒子的水性浆料溶液中合成了Fe3O4 / SiO2 / TiO2光催化剂。同时,通过在氢氧化铵中共沉淀铁离子(II)和铁离子III的混合物,通过简单的程序制备Fe3O4 / SiO2,并用硅酸钠浸提。对合成的样品进行了研究,分别通过X射线衍射(XRD),振动样品磁力计(VSM)和透射电子显微镜(TEM)确定了复合材料的相结构,磁性和形貌。结果表明,复合材料含有锐钛矿相和金红石相,并表现出超顺磁行为。 Fe3O4 / SiO2颗粒以聚集球形的形式存在,尺寸为20 nm,已成功附着到TiO2表面。评估了Fe3O4 / SiO2 / TiO2复合材料在紫外(UV)辐射下的催化降解亚甲基蓝的活性。 SiO 2作为Fe 3 O 4和TiO 2之间的阻挡层的存在不仅改善了光催化性能,而且还提供了将性能吸附在复合材料上的能力。 Fe3O4 / SiO2 / TiO2(复合物中含50%的TiO2)能够通过吸附和光催化过程消除水中87.3%的亚甲基蓝。该结果略低于纯TiO2,后者能够降解96%的亚甲基蓝。所得的Fe 3 O 4 / SiO 2 / TiO 2复合材料显示出优异的从水中去除染料的能力,并且使用磁棒容易地将其从水中回收。因此,它们作为浆液反应器工艺中纺织品废料的染料废水脱色的高效简便方法具有很高的效力。

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