银修饰还原性氧化石墨烯纳米杂化物的制备及其光催化降解靛蓝胭脂红染料的研究

Saurav Ramesh Nayak, Kikkeri Narasimha Shetty Mohana, K. Rajitha, Ambale Murthy Madhusudhana, N. K. Swamy, M. Hegde
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引用次数: 0

摘要

尽管银修饰的还原氧化石墨烯(Ag-rGO)在紫外区显示出最大的吸收率,但大多数使用Ag-rGO降解染料的研究都是在可见光区进行的。在此背景下,制备了银修饰的还原性氧化石墨烯杂化材料,并探索了其在紫外区光催化降解IC水溶液的潜力。透射电镜分析证实了银纳米粒子在还原氧化石墨烯纳米片表面的修饰作用。通过测定辐照前后的化学需氧量(COD)值来测定染料的矿化程度。合成的Ag-rGO二元复合材料在210-5 M IC浓度和5mg催化剂负载下表现出优异的光催化活性。Ag-rGO的光学吸收光谱表明,Ag-rGO的能带隙为2.27 eV,比GO的能带隙小得多。发现5 mg Ag-rGO是有效降解IC染料的最佳用量。在碱性条件下,降解速率随染料浓度的降低而增加。第二次使用的光催化效率为92%。活性物质生成增强的影响与更高的光催化染料降解一致。提出了光催化机理,并发现羟基自由基是降解染料的活性物质。光催化剂二次利用的可行性表明,光催化效率是非常有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Preparation of silver decorated reduced graphene oxide nanohybrid for effective photocatalytic degradation of indigo carmine dye
Even though silver decorated reduced graphene oxide (Ag-rGO) shows maximum absorptivity in the UV region, most of the research on the degradation of dyes using Ag-rGO is in the visible region. Therefore the present work focused on the photocatalytic degradation of indigo carmine (IC) dye in the presence of Ag-rGO as a catalyst by UV light irradiation In this context, silver-decorated reduced graphene oxide hybrid material was fabricated and explores its potential for the photocatalytic degradation of aqueous IC solution in the UV region. The decoration of Ag nanoparticles on the surface of the rGO nanosheets is evidenced by TEM analysis. The extent of mineralization of the dye was measured by estimating chemical oxygen demand (COD) values before and after irradiation. The synthesized Ag-rGO binary composites displayed excellent photocatalytic activity in 2  10-5 M IC concentration and 5mg catalyst loading. The optical absorption spectrum of Ag-rGO showed that the energy band-gap was found to be 2.27 eV, which is significantly smaller compared to the band-gap of GO. 5 mg of Ag-rGO was found to be an optimum quantity for the effective degradation of IC dye. The degradation rate increases with the decrease in the concentration of the dye at alkaline pH conditions. The photocatalytic efficiency was 92% for the use of the second time. The impact of the enhanced reactive species generation was consistent with higher photocatalytic dye degradation. The photocatalytic mechanism has been proposed and the hydroxyl radical was found to be the reactive species responsible for the degradation of dye. The feasibility of reusing the photocatalyst showed that the photocatalytic efficiency was very effective for the use of the second time.
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