Synthesis, characterization and photocatalytic activity of MnO2/Al2O3/Fe2O3 nanocomposite for degradation of malachite green

Haile Hasana Logita, Abi M. Tadesse, T. Kebede
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引用次数: 33

Abstract

New nanocomposite MnO2/Al2O3/Fe2O3 photocatalyst was successfully synthesized by sol-gel method using metal salts as precursors in the presence of acid catalyst. The as-synthesized samples were characterized by X-ray diffraction (XRD), Fourier transform infrared (FTIR), atomic absorption spectroscopy (AAS) and UV-Vis diffuse reflectance spectroscopy. Elemental analyses of the as-synthesized samples were similar to those expected from the initial concentrations of the solutions used during synthesis. The x-ray diffraction pattern indicated that all as-synthesized samples had a crystal size with a rhombohedral structure and finest particle size of the catalyst (20.096 nm) was obtained at 400°C calcination temperature. The band gap energy of the MnO2/Al2O3/Fe2O3 photocatalyst was calculated to be 1.97 eV and indicated that the as-synthesize sample had high photoabsorption property in the visible light region. Fourier transform infrared spectra confirmed the presence of hydroxyl group and Fe-O bond vibration in the catalyst. Experimental result of the MnO2/Al2O3/Fe2O3 photocatalyst calcined at 400°C in 180 min (the molar ratio of 10 wt% Mn/15 wt% Al/75 wt% Fe) exhibited high photocatalytic activity of 92.89% under visible light irradiation. This may be due to the coupling effect of semiconductors, small particle size of catalyst and low electron-hole pair recombination on the surface of the catalyst. The pseudo-first-order rate constants of MG dye degradation in the presence of the catalyst were calculated as 4 × 10-4, 6.56 × 10-3 and 1.0 × 10-2 min-1 under no light irradiation, UV and visible light irradiation, respectively. Key words: Malachite green, nanoparticles, photocatalysis, sol-gel synthesis, ternaryoxides.
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MnO2/Al2O3/Fe2O3纳米复合材料降解孔雀石绿的合成、表征及光催化活性
在酸性催化剂的存在下,以金属盐为前驱体,采用溶胶-凝胶法制备了新型纳米复合MnO2/Al2O3/Fe2O3光催化剂。采用x射线衍射(XRD)、傅里叶变换红外(FTIR)、原子吸收光谱(AAS)和UV-Vis漫反射光谱对合成的样品进行了表征。合成样品的元素分析与合成过程中使用的溶液的初始浓度相似。x射线衍射图表明,所有合成样品的晶体尺寸均为菱形结构,在400℃煅烧温度下获得了催化剂的最佳粒径(20.096 nm)。计算得到MnO2/Al2O3/Fe2O3光催化剂的带隙能为1.97 eV,表明合成样品在可见光区具有较高的光吸收性能。傅里叶变换红外光谱证实了催化剂中羟基的存在和Fe-O键的振动。实验结果表明,MnO2/Al2O3/Fe2O3光催化剂在400℃下煅烧180 min(摩尔比为10 wt% Mn/15 wt% Al/75 wt% Fe),在可见光下的光催化活性高达92.89%。这可能是由于半导体的耦合效应,催化剂的粒径小,催化剂表面的电子-空穴对复合率低。计算了催化剂存在下MG染料在无光、紫外和可见光照射下降解的准一级速率常数分别为4 × 10- 4,6.56 × 10-3和1.0 × 10-2 min-1。关键词:孔雀石绿,纳米颗粒,光催化,溶胶-凝胶合成,三元氧化物
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