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Phenol degradation using an anodized graphene-doped TiO_2 nanotube composite under visible light

机译:阳极氧化石墨烯掺杂TiO_2纳米管复合材料在可见光下降解苯酚

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TiO2 nanotubes (TNTs) were doped with reduced graphene oxide (RGO) via anodization. The synthesized catalyst was characterized by FE-SEM, XRD, AES, PL, Raman, and UV-vis DRS. We have synthesized the catalyst with different RGO doping time and RGO concentration. The optimum synthesis conditions for RGO doping were a 0.5 g L-1 RGO anodization at 60 V for 1 min. Compared with un-doped TNTs, the RGO-doped TNT photocatalyst showed a 3.8-fold higher photocatalytic activity, while phenol degradation under visible light irradiation. Optimum phenol degradation was observed at an external bias of 0.5 V using a photoelectrocatalytic method, and this degradation rate was 3.5-fold higher than that observed for un-doped TNTs. The intermediate products of phenol were also analyzed using TD-GC-MS method to evaluate the phenol degradation pathways. The RGO-doped TNTs reduced the recombination of photo-induced e- and h(+) and thus increased the formation of the OH radicals and superoxides that degrade phenol. (C) 2017 Elsevier B.V. All rights reserved.
机译:TiO2纳米管(TNT)通过阳极氧化掺杂了还原氧化石墨烯(RGO)。通过FE-SEM,XRD,AES,PL,Raman和UV-vis DRS对合成的催化剂进行了表征。我们合成了具有不同RGO掺杂时间和RGO浓度的催化剂。 RGO掺杂的最佳合成条件是在60 V下0.5 g L-1 RGO阳极氧化1分钟。与未掺杂的TNT相比,RGO掺杂的TNT光催化剂显示出高3.8倍的光催化活性,而苯酚在可见光照射下降解。使用光电催化方法在0.5 V的外部偏压下观察到最佳的苯酚降解,该降解速率比未掺杂TNTs观察到的降解速率高3.5倍。还使用TD-GC-MS方法分析了苯酚的中间产物,以评估苯酚的降解途径。掺杂RGO的TNT减少了光诱导的e-和h(+)的重组,因此增加了可降解酚的OH自由基和超氧化物的形成。 (C)2017 Elsevier B.V.保留所有权利。

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