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Efficient H2 production by water-splitting using indium-tin-oxide/V-doped TiO2 multilayer thin film photocatalyst

机译:使用氧化铟锡/ V掺杂的TiO2多层薄膜光催化剂进行水分解可有效生产H2

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In order to sensitize TiO2 in visible light and to reduce photo-induced charge recombination, the multilayer films of Indium-Tin Oxide (ITO)/V-doped TiO2 were synthesized by radio-frequency magnetron sputtering. V-doped TiO2 thin films showed red shift in TiO2 absorption edge with increasing dopant concentration and, most importantly, the dopant energy levels are formed in the TiO2 band gap due to V5+A^+ ions as confirmed by UV-Visible and XPS spectra. Multilayer films with different numbers of ITO/V-doped TiO2 (6 at.%) bilayers (namely, 2-, 3-, 4-, 5-, 6- and 7-bilayers) were deposited, in order to reduce the charge recombination rate, by keeping the total thickness of TiO2 constant in each multilayer film. In multilayer films, when exposed to visible light the photocurrent increases as function of the number of bilayers by reaching the maximum with 6-bilayers of ITO/V-doped TiO2. The measured enhanced photocurrent is attributed to: 1) ability of V-doped TiO2 to absorb visible light, 2) number of space-charge layers in form of ITO/TiO2 interfaces in multilayer films, and 3) generation of photoelectrons just in/or near to the space-charge layer by decreasing the V-doped TiO2 layer thickness. The reduced charge recombination rate in multilayer films was also confirmed by the photocurrent kinetic curves. The superior photocatalytic efficiency of the 6-bilayers film is also reflected in hydrogen production rate through water-splitting: we obtained indeed 31.2 nmol/h of H2 production rate.
机译:为了使可见光中的TiO2敏感并减少光诱导的电荷复合,通过射频磁控溅射法合成了氧化铟锡(ITO)/钒掺杂的TiO2多层膜。 V掺杂的TiO2薄膜随着掺杂剂浓度的增加显示出TiO2吸收边缘的红移,最重要的是,由于V5 + A ^ +离子,紫外光和XPS光谱证实了TiO2带隙中形成的掺杂能级。沉积具有不同数量的ITO / V掺杂TiO2(6 at。%)双层(即2、3、4、5、6和7双层)的多层膜,以减少电荷通过保持每个多层膜中TiO2的总厚度恒定,可以提高复合速率。在多层膜中,当暴露于可见光时,光电流随着双层数的增加而增加,这是通过双层双层ITO / V掺杂的TiO2达到最大值而实现的。测得的增强的光电流归因于:1)掺V的TiO2吸收可见光的能力; 2)多层膜中以ITO / TiO2界面形式存在的许多空间电荷层,以及3)刚好在/或内部产生光电子。通过减小掺杂V的TiO 2层的厚度而接近空间电荷层。多层膜中电荷复合率的降低也由光电流动力学曲线证实。 6层薄膜的优异光催化效率也反映在通过水分解产生的氢气中:我们确实获得了31.2 nmol / h的氢气产生速率。

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