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Experimental and Theoretical Studies on the Enhanced Photocatalytic Activity of ZnWO4 Nanorods by Fluorine Doping

机译:氟掺杂增强ZnWO4纳米棒光催化活性的实验和理论研究

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We present a combined study of the photocatalysis of the F interstitially doped ZnWO4 (Fi-ZnWO4) nanocrystals by means of experiment and DFT band structure calculations, including an analysis of the chemical bonding. The Fj-ZnWO4 nanorods were prepared via a two-step hydrothermal process by adjusting the pH of the reaction solution. The results showed that the Fi-ZnWO4 samples exhibited stronger absorption in the UV-visible range with a red shift in the band-gap transition. The photocatalytic activity of the FiZnWO4 samples was highly enhanced for the photocatalytic decomposition of RhB under ultraviolet light irradiation. The morphology and crystallinity of Fi-ZnWO4 have a significant influence on the photocatalytic activity; the Fi-ZnWO4 nanorod showed much higher photocatalytic activity than the nanoparticle one. The DFT calculations show that the mixing of F 2p and O 2p states in the top of the valence band induces the valence band to extend to higher energy, which accounts for the slight red shift of the optical absorption edge observed in the experiment. In addition, the interstitial F impurity creates a new half-filled state in the band gap, which can supply a hole carrier to improve the photocurrent density for the F-doped ZnWO4 under UV radiation, thus enhancing the photocatalytic activity of ZnWO4. The excellent agreement between the measured spectra and calculated electronic structure can provide a solid basis for understanding the enhanced photocatalytic activity of F,-ZnWO4 nanocrystals.
机译:我们通过实验和DFT能带结构计算,包括化学键合分析,对F掺杂的ZnWO4(Fi-ZnWO4)纳米晶体的光催化性能进行了综合研究。 Fj-ZnWO4纳米棒是通过两步水热过程通过调节反应溶液的pH值来制备的。结果表明,Fi-ZnWO4样品在紫外可见光范围内表现出较强的吸收性,带隙跃迁发生红移。 FiZnWO4样品的光催化活性大大增强了RhB在紫外光下的光催化分解。 Fi-ZnWO4的形貌和结晶度对光催化活性有重要影响。 Fi-ZnWO4纳米棒比纳米颗粒具有更高的光催化活性。 DFT计算表明,价带顶部的F 2p和O 2p状态混合会导致价带扩展到更高的能量,这说明了在实验中观察到的光吸收边缘会发生轻微的红移。另外,间隙F杂质在带隙中产生新的半填充状态,这可以提供空穴载流子以改善掺F的ZnWO 4在紫外辐射下的光电流密度,从而增强ZnWO 4的光催化活性。测量的光谱和计算的电子结构之间的优异一致性可以为理解F,-ZnWO4纳米晶体增强的光催化活性提供坚实的基础。

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