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ZnO 六方管/r-GO 复合材料对有机水污染物降解的光催化活性增强及载流子输运性能研究。

Enhanced photocatalytic activity of ZnO hexagonal tube/r-GO composite on degradation of organic aqueous pollutant and study of charge transport properties.

机构信息

Department of Physics, Government Arts College (Autonomous), Salem, 7, Tamil Nadu, India; Department of Physics, Periyar University, Salem, 11, Tamil Nadu, India.

Department of Physics, Periyar University, Salem, 11, Tamil Nadu, India.

出版信息

Chemosphere. 2022 Mar;291(Pt 1):132782. doi: 10.1016/j.chemosphere.2021.132782. Epub 2021 Nov 5.

Abstract

ZnO hexagonal tube and ZnO/r-GO nanocomposites were synthesized by hydrothermal method and the nanostructures were characterized by XRD, UV-DRS, PL, FTIR, FESEM, and TEM techniques. The main violet emission peak of the synthesized nanostructures is due to the transition between interstitial zinc and hole (valence band) of ZnO. The potential of ZnO/r-GO nanocomposite was evaluated using methyl orange (MO) and rhodamine-B (RhB), and the results were compared with the activity of synthesized ZnO nanostructures. More than 95% of MO and RhB were by ZnO/r-GO nanocomposite and it was found to be higher than that of ZnO hexagonal tube. The degradation MO and RhB were found to follow first-order kinetics and it has a rate constant of 7.68 × 10and 7.83 × 10 min, respectively. These results are mainly due to the enhanced charge transport property. Trapping experiments show that superoxide radical anion and hydroxide radicals are chief species responsible for the degradation of MO and RhB. The chemical stability of the nanocomposite was evaluated by cycle test experiments and it reveals that the catalyst can be reused up to few cycles without considerable loss of photocatalytic activity. This work affords a simple stratagem to integrate ZnO hexagonal tubes and r-GO nanosheets to construct effective catalysts for the degradation of organic compounds.

摘要

采用水热法合成了 ZnO 六方管和 ZnO/r-GO 纳米复合材料,并通过 XRD、UV-DRS、PL、FTIR、FESEM 和 TEM 技术对纳米结构进行了表征。合成的纳米结构的主要紫外观测发射峰归因于 ZnO 中间隙锌和空穴(价带)之间的跃迁。使用甲基橙 (MO) 和罗丹明 B (RhB) 评估了 ZnO/r-GO 纳米复合材料的潜力,并将其与合成 ZnO 纳米结构的活性进行了比较。超过 95%的 MO 和 RhB 被 ZnO/r-GO 纳米复合材料去除,其活性高于 ZnO 六方管。发现 MO 和 RhB 的降解遵循一级动力学,其速率常数分别为 7.68×10 和 7.83×10 min。这些结果主要归因于增强的电荷输运特性。捕获实验表明,超氧自由基阴离子和氢氧自由基是降解 MO 和 RhB 的主要物种。通过循环试验评估了纳米复合材料的化学稳定性,结果表明催化剂可以重复使用几次而不会失去相当多的光催化活性。这项工作提供了一种简单的策略,将 ZnO 六方管和 r-GO 纳米片集成到构建用于降解有机化合物的有效催化剂中。

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