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N-doped mesoporous inverse opal structures for visible-light photocatalysts

机译:用于可见光光催化剂的N-掺杂的介孔逆蛋白石结构

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摘要

We introduce a new type of doped TiO2 nanostructures, an N-doped mesoporous inverse opal (N-mIO) TiO2 structure as a high-performance visible-light photocatalyst. The mIO TiO2 structure with a 60 nm pore diameter, which possesses a much higher specific area compared with conventional macroporous IO structures, is prepared via a templating approach. The N doping in the mIO TiO2 is achieved via a heat-treatment in the presence of a N-rich precursor. We characterize that the N atom is incorporated in an oxygen-substitution configuration, which effectively narrowed the bandgap of TiO2. We observe that the N doping with a 9.4 wt% doping concentration narrows the bandgap from 3.2 eV to 2.4 eV, which corresponds to light absorption at wavelengths as long as 520 nm. The N doping also changes the surface polarity of TiO2 to a more negative value, which leads to greater adsorption of methylene blue (MB) organic molecules. In the photocatalytic decomposition of MB, the highly N-doped mIO TiO2 exhibits a decomposition rate under visible light exposure that is 4.9 times greater than that of bare IO TiO2. Moreover, compared with the conventional macroporous IO structure, the N-doped mIO exhibits 1.7 times greater activity as a result of its high specific area. We believe this mIO structure can provide a new platform for various electrode applications.
机译:我们介绍了一种新型掺杂的TiO2纳米结构,一种N掺杂的介孔反蛋白石(N-MIO)TiO2结构,作为高性能可见光光催化剂。通过模板方法制备具有60nm孔径的Mio TiO2结构具有60nm的孔径,其具有更高的特异性区域,通过模板方法制备。在富含N原型的前体存在下通过热处理实现MiO TiO 2中的n掺杂。我们表征了N原子以氧气替代构型结合,其有效地缩小了TiO2的带隙。我们观察到具有9.4wt%掺杂浓度的N掺杂从3.2eV到2.4eV中的带隙变窄,这对应于波长的光吸收,只要为520nm。 N掺杂也将TiO 2的表面极性改变为更负值,这导致亚甲基蓝(MB)有机分子的吸附。在MB的光催化分解中,高度N掺杂的MiO TiO2在可见光暴露下表现出分解速率,其比裸IO TiO2大于4.9倍。此外,与传统的大孔IO结构相比,由于其高特定区域,N掺杂的MIO表现出1.7倍的活动。我们认为,这种MIO结构可以为各种电极应用提供新的平台。

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  • 来源
    《RSC Advances》 |2015年第95期|共7页
  • 作者单位

    Sogang Univ Dept Chem &

    Biomol Engn Seoul 121742 South Korea;

    Ewha Womans Univ Dept Chem &

    Nano Sci Seoul 120750 South Korea;

    Sogang Univ Dept Chem &

    Biomol Engn Seoul 121742 South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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