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Structural, magnetic, and photocatalytic properties of core-shell reversal nanocomposites of titanium-doped strontium ferrite and silica

机译:钛掺杂锶铁氧体和二氧化硅核壳反转纳米复合材料的结构、磁性和光催化性能

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摘要

This paper presents the effect of core-shell reversal on the photocatalytic potential of titanium-doped strontium ferrite (Sr0.4Ti0.6Fe2O4.6) and silica (SiO2) nanocomposites. The construction of core-shell-structured Z-scheme systems is a valid strategy to effectively enhance photocatalytic activity. Mossbauer spectroscopy studies demonstrated the more lowering of hyperfine field values for SiO2@Sr0.4Ti0.6Fe2O4.6 compared to Sr0.4Ti0.6Fe2O4.6@SiO2 core-shell nanocomposite. The Sr0.4Ti0.6Fe2O4.6@SiO2 nanocomposite had higher BET-specific surface area of 117.3 m2/g than that of SiO2@Sr0.4Ti0.6Fe2O4.6(106.9 m(2)/g). The Sr0.4Ti0.6Fe2O4.6@SiO2 exhibited higher photocatalytic activity than SiO2@Sr0.4Ti0.6Fe2O4.6 for the degradation of model pesticide, pendimethalin (similar to 96). It was ascribed to the narrowing of bandgap, high surface area, and decrease in the photoluminescence intensity. A Z-scheme photocatalytic degradation mechanism for pendimethalin over Sr0.4Ti0.6Fe2O4.6@SiO2 nanocomposite was proposed. The results indicate that the designing of core-shell structures can play a significant role in improving the photocatalysts.
机译:本文介绍了核壳反转对钛掺杂锶铁氧体(Sr0.4Ti0.6Fe2O4.6)和二氧化硅(SiO2)纳米复合材料光催化电位的影响。构建核壳结构的Z型体系是有效提高光催化活性的有效策略。Mossbauer光谱研究表明,与核壳纳米复合材料相比,SiO2@Sr0.4Ti0.6Fe2O4.6的超精细场值Sr0.4Ti0.6Fe2O4.6@SiO2降低得更多。Sr0.4Ti0.6Fe2O4.6@SiO2纳米复合材料的BET比表面积为117.3 m2/g,高于SiO2@Sr0.4Ti0.6Fe2O4.6(106.9 m(2)/g)。该Sr0.4Ti0.6Fe2O4.6@SiO2对模型农药二甲戊灵的降解表现出比SiO2@Sr0.4Ti0.6Fe2O4.6更高的光催化活性(与96%相近)。这归因于带隙变窄、表面积大和光致发光强度降低。提出了一种Z型光催化二甲戊灵在Sr0.4Ti0.6Fe2O4.6@SiO2纳米复合材料上的降解机理。结果表明,核壳结构的设计对光催化剂的改善具有重要作用。

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