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Microwave-assisted synthesis of an RGO/CdS/TiO2 step-scheme with exposed TiO2 {001} facets and enhanced visible photocatalytic activity

机译:微波辅助合成RGO / Cds / TiO2步骤 - 具有暴露的TiO2 {001}刻面,增强可见光催化活性

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Semiconductor-based heterojunction photocatalysts with a special active crystal surface act as an essential part in environmental remediation and renewable energy technologies. In this study, an RGO/CdS/TiO _(2) step-scheme with high energy {001} TiO _(2) facets was successfully fabricated via a microwave-assisted solvothermal method. The photocatalytic performance of as-prepared samples was assessed by degrading methylene blue under visible light irradiation. We found that the photocatalytic activity of the RGO/CdS/TiO _(2) step-scheme heterojunction was related to the proportion of TiO _(2) . A ternary sample with a TiO _(2) content of 10 wt% exhibited superior photocatalytic performance, and approximately 99.7% of methylene blue was degraded during 50 min of visible illumination which was much higher than the percentages found for TiO _(2) , CdS, RGO/TiO _(2) , and RGO/CdS. The greatly improved photocatalytic performance is due to the exposure of the reactive {001} surface of TiO _(2) and the formation of a CdS/TiO _(2) heterojunction step-scheme, which effectively inhibits the recombination of charge carriers at the heterogeneous interfaces. Moreover, the incorporation of graphene further enhances the visible light harvesting and serves as an electron transport channel for rapidly separating photogenerated carriers. Based on the PL, XPS, photoelectrochemical properties and the free radical capturing experiment results, a possible photodegradation mechanism was proposed.
机译:基于半导体的异质结光催化剂,具有特殊的活性晶体表面起到环境修复和可再生能源技术的重要组成部分。在该研究中,通过微波辅助的溶剂热法成功地制造具有高能{001} TiO _(2)刻面的Rgo / Cds / TiO _(2)步骤方案。通过在可见光照射下降解亚甲基蓝色来评估制备样品的光催化性能。我们发现RGO / Cds / TiO _(2)步骤方案异质结的光催化活性与TiO _(2)的比例有关。具有TiO _(2)含量为10wt%的三元样品表现出优异的光催化性能,并且在50分钟的可见光照明期间,大约99.7%的亚甲基蓝色降解,远高于TiO _(2)的百分比, CD,RGO / TIO _(2)和RGO / CD。显着的光催化性能是由于TiO _(2)的反应性{001}表面的暴露,以及形成Cds / TiO _(2)异质结合方案,其有效地抑制了电荷载体的重组异构接口。此外,石墨烯的掺入进一步增强了可见光收集,并用作电子传输通道,用于快速分离光生载体。基于PL,XPS,光电化学性质和自由基捕获实验结果,提出了一种可能的光降解机理。

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