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Low temperature RF plasma nitriding of self-organized TiO_2 nanotubes for effective bandgap reduction

机译:自组织TiO_2纳米管的低温RF等离子体氮化,可有效降低带隙

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Titanium dioxide is a widely studied semiconductor material found in many nanostructured forms, presenting very interesting properties for several applications, particularly photocatalysis. TiO2 nanotubes have a high surface-to-volume ratio and functional electronic properties for light harvesting. Despite these manifold advantages, TiO2 photocatalytic activity is limited to UV radiation due to its large band gap. In this work, TiO2 nanotubes produced by electrochemical anodization were submitted to plasma nitriding processes in a PECVD reactor. The plasma parameters were evaluated to find the best conditions for gap reduction, in order to increase their photocatalytic activity. The pressure and RF power density were varied from 0.66 to 2.66 mbar and 0.22 to 3.51 W/cm(2) respectively. The best gap reduction, to 2.80 eV, was achieved using a pressure of 1.33 mbar and 1.75 W/cm(2) RF power at 320 degrees C, during a 2-h process. This leads to a 14% reduction in the band gap value and an increase of 25.3% in methylene blue reduction, doubling the range of solar photons absorption from 5 to 10% of the solar spectrum. (C) 2018 Elsevier B.V. All rights reserved.
机译:二氧化钛是以许多纳米结构形式被广泛研究的半导体材料,在多种应用中表现出非常令人感兴趣的特性,特别是光催化。 TiO2纳米管具有高的表面体积比和用于光收集的功能性电子特性。尽管具有这些多方面的优势,但由于其较大的带隙,TiO2的光催化活性仅限于UV辐射。在这项工作中,通过电化学阳极氧化生产的TiO2纳米管在PECVD反应器中进行了等离子体氮化工艺。评价等离子体参数以找到减少间隙的最佳条件,以增加其光催化活性。压力和RF功率密度分别从0.66到2.66 mbar和0.22到3.51 W / cm(2)变化。在2小时的过程中,在320摄氏度下使用1.33 mbar的压力和1.75 W / cm(2)的RF功率,可以将最佳间隙减小到2.80 eV。这导致带隙值减少14%,亚甲基蓝减少量增加25.3%,使太阳光子吸收范围从太阳光谱的5%增加到10%翻了一番。 (C)2018 Elsevier B.V.保留所有权利。

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