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首页> 外文期刊>Royal Society Open Science >Incorporation of reduced graphene oxide into faceted flower-like {001} TiO2 for enhanced photocatalytic activity
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Incorporation of reduced graphene oxide into faceted flower-like {001} TiO2 for enhanced photocatalytic activity

机译:将还原的氧化石墨烯掺入刻面的花状{001} TiO2中以增强光催化活性

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Anatase TiO2 with {001} facets is much more active than that with {101} facets, which has been verified via experiments and theoretical calculations. Graphene has garnered much attention since it was initially synthesized, due to its unique properties. In this study, reduced graphene oxide (RGO)/{001} faceted TiO2 composites were fabricated via a solvothermal method. The composites were characterized by scanning electron microscopy, transmission electron microscopy, X-ray diffraction, X-ray photoelectron spectrophotometry, photoluminescence and Raman analysis. The results revealed that the graphene oxide was reduced during the preparation process of the {001} faceted TiO2, and combined with the surface of {001} TiO2. The photocatalytic activities of the composites were evaluated through the degradation of basic violet, under both white light ( λ > 390 nm) and visible light ( λ = 420 nm) irradiation. The results indicated that the photocatalytic activities of the {001} faceted TiO2 were significantly improved following the incorporation of RGO, particularly under visible light irradiation. Theoretical calculations showed that the band structure of the {001} faceted TiO2 was modified via graphene hybridization, where the separation of photoinduced electron–hole pairs was promoted; thus, the photocatalytic activity was enhanced.
机译:{001}面的锐钛矿型TiO 2 活性比{101}面的锐钛矿TiO 2 活性高,已通过实验和理论计算证明。石墨烯由于其独特的性能,自最初被合成以来就引起了广泛的关注。本研究采用溶剂热法制备了还原氧化石墨烯(RGO)/ {001}面TiO 2 复合材料。通过扫描电子显微镜,透射电子显微镜,X射线衍射,X射线光电子分光光度法,光致发光和拉曼分析来表征复合材料。结果表明,在{001}刻面TiO 2 的制备过程中,氧化石墨烯被还原,并与{001} TiO 2 的表面结合。通过在白光(λ> 390 nm)和可见光(λ= 420 nm)照射下碱性紫的降解来评估复合材料的光催化活性。结果表明,加入RGO后,{001}面TiO 2 的光催化活性显着提高,特别是在可见光照射下。理论计算表明,{001}多面TiO 2 的能带结构通过石墨烯杂交得到修饰,促进了光致电子-空穴对的分离。因此,提高了光催化活性。

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