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首页> 外文期刊>Applied Surface Science >Ultrasound-assisted heterogeneous degradation of tetracycline over flower- like rGO/CdWO_4 hierarchical structures as robust solar-light-responsive photocatalysts: Optimization, kinetics, and mechanism
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Ultrasound-assisted heterogeneous degradation of tetracycline over flower- like rGO/CdWO_4 hierarchical structures as robust solar-light-responsive photocatalysts: Optimization, kinetics, and mechanism

机译:超声辅助四环素在花状rGO / CdWO_4分层结构上作为强光响应性光催化剂的异质降解:优化,动力学和机理

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摘要

Novel hybrid decontamination processes based on visible-light-responsive photocatalysts (VLPHS) have recently become a focus of environmental research. In this study, the sonophotocatalytic degradation of the antibiotic tetracycline (TC) using a binary rGO/CdWO4 composite under simulated visible-light irradiation was demonstrated for the first time. Structural characterization confirmed that flower-like CdWO4 particles with a wolframite phase structure were successfully immobilized on the surface of the graphene oxide (GO). Subsequently, reduced GO/CdWO4 (rGO/CdWO4) VLPHS were prepared via the facile photocatalytic reduction of GO/CdWO4. A Box-Behnken design based on response surface methodology (RSM) was employed to determine the maximum efficiency of sonophotocatalytic degradation by optimizing the process parameters (pH, initial TC concentration, treatment time, and catalyst dosage). The high determination coefficients (R-2 = 0.9818 and adjusted R-2 = 0.9636) indicated that the experimental values fitted the proposed RSM model well. Compared with CdWO4, rGO/CdWO4 VLPHS exhibited significant photoelectrochemical (PEC) performance, superior sonophotocatalytic activity, and mineralization efficiency. The enhanced catalytic activity was mainly due to the larger optical adsorption range, greater photo-induced charge carrier transfer, and higher surface area. In addition, rGO/CdWO4 exhibited a catalytic activity that was 1.5 and 3 times higher than that of commercial nano-ZnO and -TiO2, respectively. The kinetic analysis indicated that the degradation rate of TC follows the Langmuir-Hinshelwood kinetic model. The possible photocatalytic mechanism behind the degradation of TC by rGO/CdWO4 was also tentatively proposed. This study provides a simple and scalable pathway to produce highly efficient rGO-based VLPHS for photocatalytic and PEC applications.
机译:基于可见光响应型光催化剂(VLPHS)的新型混合去污工艺近来已成为环境研究的焦点。在这项研究中,首次证明了使用二元rGO / CdWO4复合材料在模拟可见光照射下声光降解抗生素四环素(TC)。结构表征证实,具有黑钨矿相结构的花状CdWO4颗粒已成功固定在氧化石墨烯(GO)的表面上。随后,通过GO / CdWO4的光催化还原,制备了还原的GO / CdWO4(rGO / CdWO4)VLPHS。采用基于响应表面方法(RSM)的Box-Behnken设计,通过优化工艺参数(pH,初始TC浓度,处理时间和催化剂用量)来确定声光催化降解的最大效率。高测定系数(R-2 = 0.9818,调整后的R-2 = 0.9636)表明实验值与拟议的RSM模型非常吻合。与CdWO4相比,rGO / CdWO4 VLPHS表现出显着的光电化学(PEC)性能,优异的声光催化活性和矿化效率。增强的催化活性主要是由于更大的光学吸附范围,更大的光诱导电荷载流子转移以及更大的表面积。此外,rGO / CdWO4的催化活性分别比市售纳米ZnO和-TiO2高1.5和3倍。动力学分析表明TC的降解速率遵循Langmuir-Hinshelwood动力学模型。还初步提出了rGO / CdWO4降解TC后可能的光催化机理。这项研究提供了一种简单且可扩展的途径来生产用于光催化和PEC应用的高效基于rGO的VLPHS。

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