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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Carbon-doped TiO2 nanoparticles wrapped with nanographene as a high performance photocatalyst for phenol degradation under visible light irradiation
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Carbon-doped TiO2 nanoparticles wrapped with nanographene as a high performance photocatalyst for phenol degradation under visible light irradiation

机译:纳米石墨烯包裹的掺碳TiO2纳米颗粒作为高性能光催化剂,用于可见光照射下的苯酚降解

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With a view to developing photocatalytic applications under irradiation by visible light, many efforts have been devoted to modifying band structure of TiO2 by doping with metal and non-metalions. Although doping techniques promote the absorption of visible light, it is usually accompanied by the formation of defect sites. Consequently, photocatalytic activity cannot be improved when the concentration of defects is high. Here we wrapped each of carbon-doped TiO2 (C-TiO2) nanoparticles (NPs) with nano-sized graphene (nGR) for use as a high performance material for the phenol degradation and quantified the enhanced photoelectrochemical properties compared to bare C-TiO2 NPs and C-TiO2 NPs distributed on micro-sized graphene (C-TiO2/μGR). C-TiO2 NPs wrapped with nGR (nGR@C-TiO2) showed outstanding oxidizing power than those of bare C-TiO2 NPs, C-TiO2/fxGR and commercial TiO2 (P25). It is proven that nGR@C-TiO2 possesses the low interfacial charge-transfer resistance between C-TiO2 and reactant As a result, prolonged lifetime of photogenerated charges over the C-TiO2 NPs caused the formation of the larger amount of hydroxyl radicals ('OH) with strong oxidizing power for the phenol degradation.
机译:为了开发在可见光照射下的光催化应用,已经进行了许多努力来通过掺杂金属和非金属离子来改变TiO 2的能带结构。尽管掺杂技术促进了可见光的吸收,但是通常伴随着缺陷部位的形成。因此,当缺陷浓度高时,不能提高光催化活性。在这里,我们用纳米级石墨烯(nGR)包裹了每个碳掺杂的TiO2(C-TiO2)纳米颗粒(NPs),用作酚降解的高性能材料,并定量了与裸露的C-TiO2 NPs相比增强的光电化学性能C-TiO2 NPs分布在微尺寸石墨烯(C-TiO2 /μGR)上。包裹有nGR(nGR @ C-TiO2)的C-TiO2 NP表现出比裸露的C-TiO2 NP,C-TiO2 / fxGR和商用TiO2(P25)更高的氧化能力。事实证明,nGR @ C-TiO2在C-TiO2和反应物之间具有较低的界面电荷转移阻力。结果,C-TiO2 NP上光生电荷的寿命延长导致形成大量的羟基自由基(' OH)具有强氧化能力,可降解苯酚。

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