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Adsorption and photo-Fenton catalytic degradation of organic dyes over crystalline LaFeO3-doped porous silica

机译:结晶LaFeO3掺杂的多孔二氧化硅对有机染料的吸附和光芬顿催化降解

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LaFeO _(3) (LFO)-doped mesoporous silica (HPS) (HPS- x LFO with theoretical LFO/silica molar ratio x = 0.075, 0.15, 0.3) was successfully prepared via impregnation of metal ions into the porous silica HPS-0LFO support and subsequent calcination. The characterization studies suggest that increasing the doping of LFO, which exhibited a particle size of ~10–15 nm, in the silica support led to a reduction in surface area and bandgap of the resulting catalyst. The use of HPS-0.15LFO yielded a superior removal rate (98.9%) of Rhodamine B (RhB), thanks to the effective dark adsorption and visible light-induced photo-Fenton degradation, both of which were greater than those of pure LFO crystals. This enhancement could be explained by the unique properties of the mesoporous silica support. In particular, the wide-opening mesopores created a large surface area to dope LFO as active sites and minimize diffusion of RhB into pores during the photo-Fenton reaction. The photo-Fenton catalytic degradation of RhB could reach 98.6% within 90 min exposure to visible light irradiation under optimized conditions: RhB concentration = 10 mg L ~(?1) , catalyst dosage = 1 g L ~(?1) , pH = 6 and H _(2) O _(2) = 15 mM. Moreover, the recycle and reuse test proved the good stability and repetitive use of HPS-0.15LFO for high performance RhB removal.
机译:通过将金属离子浸渍到多孔二氧化硅HPS-0LFO中,成功制备了LaFeO _(3)(LFO)掺杂的中孔二氧化硅(HPS)(HPS- x LFO,理论LFO /二氧化硅摩尔比x = 0.075、0.15、0.3)支持和随后的煅烧。表征研究表明,在二氧化硅载体中增加LFO的掺杂(表现出约10-15 nm的粒径)会导致所得到催化剂的表面积和带隙减小。由于有效的暗吸附和可见光诱导的光芬顿降解,HPS-0.15LFO的罗丹明B(RhB)去除率更高(98.9%),这两者均比纯LFO晶体要大。 。这种增强可以用介孔二氧化硅载体的独特性能来解释。特别是,敞开的中孔产生了较大的表面积以将LFO掺杂为活性位点,并在光Fenton反应过程中将RhB扩散到孔中的可能性降至最低。在最佳条件下,暴露于可见光下90分钟内,RhB的光芬顿催化降解率可达到98.6%,RhB浓度= 10 mg L〜(?1),催化剂用量= 1 g L〜(?1),pH = 6和H _(2)O _(2)= 15毫米。此外,回收和再利用测试证明了HPS-0.15LFO具有良好的稳定性,并且可以重复使用,以去除高性能RhB。

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