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Effect of crystal phases of titanium dioxide on the photocatalytic activity of titanium dioxide-reduced graphene oxide composites for degradation of phenol

机译:二氧化钛的晶相对二氧化钛还原氧化石墨烯复合材料光催化降解苯酚的影响

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摘要

Titanium dioxide (TiO2) with different crystal phases generally exhibit different physical properties and photocatalytic performance. However, the effect of different phases of TiO2 on the photocatalytic activity of titanium dioxide-reduced graphene oxide (TiO2-rGO) composites prepared by photocatalytic reduction method is still unknown. In the present study, TiO2 with different phases (anatase (A), rutile (R), and mixture of anatase-rutile (A-R)) was modified with different amounts of graphene oxide (GO) loading, which were 0.5, 1, 3 and 5 wt%, via photocatalytic reduction method under 8 W UV lamp for 24 hours irradiation. The obtained composites were characterized by X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR) and fluorescence spectroscopy. Transmission electron microscopy (TEM) was also used to investigate the morphology of the selected composite sample. The XRD patterns and FTIR spectra revealed that all the TiO2-rGO composite samples were successfully synthesized without disrupting the structure of TiO2. Fluorescence spectroscopy revealed the role of rGO on the TiO2-rGO composite, while TEM-EDS confirmed the presence of both TiO2 and rGO and their respective morphologies. All TiO2 samples showed good photocatalytic activity for phenol degradation under UV irradiation for 3 hours. The presence of rGO improved the activity of bare TiO2(A-R), where the enhancement observed on bare TiO2(A-R) was much higher than those on bare TiO2(A) and TiO2(R). This good improvement might be due to the presence of rGO in the composite that suppressed the electron-hole recombination of bare TiO2(A-R), as supported by the fluorescence spectra. Among all of the samples, the TiO2(A-R)-rGO composite with GO loading amount of 3 wt% showed the highest percentage degradation of phenol. The higher activity on the TiO2(A-R)-rGO composite as compared to the TiO2(A)-rGO and TiO2 (R)-rGO composites might be caused by the synergistic effect of anatase-rutile phases. This study clearly showed that the presence of rGO enhanced the activity of TiO2 and different crystal phases of TiO2 affected the photocatalytic performance of obtained TiO2-rGO composites.
机译:具有不同晶相的二氧化钛(TiO2)通常表现出不同的物理性质和光催化性能。然而,TiO 2的不同相对通过光催化还原法制备的二氧化钛还原的氧化石墨烯(TiO 2 -rGO)复合材料的光催化活性的影响仍是未知的。在本研究中,用不同数量的氧化石墨烯(GO)负载量分别改性了具有不同相(锐钛矿(A),金红石(R)和锐钛矿-金红石(AR)的混合物)的TiO2,分别为0.5、1、3通过在8W紫外线灯下通过光催化还原法照射24小时,得到5wt%。通过X射线衍射(XRD),傅立叶变换红外光谱(FTIR)和荧光光谱对所得复合材料进行表征。透射电子显微镜(TEM)也用于研究所选复合样品的形态。 X射线衍射图谱和红外光谱图表明,所有TiO2-rGO复合材料样品均能成功合成,而不会破坏TiO2的结构。荧光光谱揭示了rGO在TiO2-rGO复合材料中的作用,而TEM-EDS证实了TiO2和rGO的存在以及它们各自的形态。所有的TiO2样品在紫外线照射3小时后均表现出良好的苯酚降解光催化活性。 rGO的存在改善了裸露的TiO2(A-R)的活性,其中在裸露的TiO2(A-R)上观察到的增强作用远高于在裸露的TiO2(A)和TiO2(R)上的增强作用。这种良好的改善可能是由于在荧光光谱的支持下,复合物中存在rGO抑制了裸露的TiO2(A-R)的电子-空穴复合。在所有样品中,GO负载量为3 wt%的TiO2(A-R)-rGO复合材料表现出最高的苯酚降解率。与TiO2(A)-rGO和TiO2(R)-rGO复合材料相比,TiO2(A-R)-rGO复合材料具有更高的活性可能是由锐钛矿-金红石相的协同作用引起的。该研究清楚地表明,rGO的存在增强了TiO 2的活性,并且TiO 2的不同晶相影响了所获得的TiO 2 -rGO复合材料的光催化性能。

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