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首页> 外文期刊>Journal of Colloid and Interface Science >Sonosynthesis of an Ag/AgSr/Graphene-oxide nanocomposite as a solar photocatalyst for efficient degradation of methyl orange
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Sonosynthesis of an Ag/AgSr/Graphene-oxide nanocomposite as a solar photocatalyst for efficient degradation of methyl orange

机译:超声合成Ag / AgSr /氧化石墨烯纳米复合材料作为有效降解甲基橙的太阳光催化剂

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In this study, a new method has developed for the synthesis of Ag/AgBr/Graphene-oxide (Ag/AgBr/GO) nanocomposite with high adsorption capacity and high photocatalytic activity in degradation of methyl orange (MO). In this method, ultrasound was applied in the synthesis and it was facilitated the process. The samples prepared under ultrasound were shown as Ag/AgBr/GO-U, and the samples under conventional method as Ag/AgBr/GO-C. The results of FT-IR, XRD, Raman, DRS and SEM confirmed the structure of the nanocomposites very well. Ultrasound played a key role in the formation of nanocomposite with smaller size of GO sheets and particles. Different amount of GO was used in the nanocomposite composition and their photocatalytic activities were compared. The MO in solution was completely degraded in 15 min, 30 min, and 45 min with Ag/AgBr/GO-U-1 that contained 1 mg mL(-1) GO, Ag/AgBr/GO-U-0.5 that contained 0.5 mg mL(-1) GO and Ag/AgBr/GO-C-0.5 that contained 0.5 mg mL(-1) GO, respectively. The chemical oxygen demand (COD) measurements displayed a complete mineralization in 30 min for Ag/AgBr/GO-U-0.5. The data obtained from the degradation experiments were fitted to the first-order kinetics and the adsorption obeyed the Langmuir model. The nanocatalyst did not exhibit significant loss of activity even after four cycles of successive uses. To determine the mechanism of photocatalytic degradation of MO, different scavengers were used. Based on the results, the superoxide radical, hydroxyl radical and hole had a key role in the degradation process. The Ag/AgBr/GO-U-1 nanocomposite exhibited the highest photocatalytic activity due to its high adsorption capacity and enhanced charge transfer. (C) 2015 Elsevier Inc. All rights reserved.
机译:在这项研究中,已开发出一种新的合成Ag / AgBr /氧化石墨烯(Ag / AgBr / GO)纳米复合材料的新方法,该复合材料具有高吸附能力和高光催化活性,可降解甲基橙(MO)。在这种方法中,将超声波应用于合成过程中,从而简化了该过程。超声制备的样品显示为Ag / AgBr / GO-U,常规方法显示的样品显示为Ag / AgBr / GO-C。 FT-IR,XRD,Raman,DRS和SEM的结果很好地证实了纳米复合材料的结构。超声波在形成尺寸较小的GO片和颗粒的纳米复合材料中起着关键作用。在纳米复合材料组合物中使用了不同量的GO,并比较了它们的光催化活性。用含1 mg mL(-1)GO,含0.5的Ag / AgBr / GO-U-0.5的Ag / AgBr / GO-U-1在15分钟,30分钟和45分钟内将溶液中的MO完全降解分别包含0.5 mg mL(-1)GO的mg mL(-1)GO和Ag / AgBr / GO-C-0.5。 Ag / AgBr / GO-U-0.5的化学需氧量(COD)测量显示在30分钟内完全矿化。从降解实验获得的数据适合一级动力学,吸附服从Langmuir模型。即使连续使用四个周期,纳米催化剂也没有表现出明显的活性损失。为了确定MO的光催化降解机理,使用了不同的清除剂。根据结果​​,超氧自由基,羟自由基和空穴在降解过程中起关键作用。 Ag / AgBr / GO-U-1纳米复合材料由于其高吸附能力和增强的电荷转移表现出最高的光催化活性。 (C)2015 Elsevier Inc.保留所有权利。

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