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TiO2 Nanotubes for Solar Water Splitting: Vacuum Annealing and Zr Doping Enhance Water Oxidation Kinetics

机译:太阳能水分裂的TiO2纳米管:真空退火和Zr掺杂增强水氧化动力学

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Herein, we report the cooperative effect of Zr doping and vacuum annealing on the carrier dynamics and interfacial kinetics of anodized TiO2 nanotubes for light-driven water oxidation. After evaluation of different Zr loads and different annealing conditions, it was found that both Zr doping and vacuum annealing lead to a significantly enhanced light harvesting efficiency and photoelectrochemical performance. The substitution of Zr4+ by Ti4+ species leads to a higher density of surface defects such as oxygen vacancies, facilitating electron trapping on Zr4+, which reduced the charge recombination and hence boosted the charge transfer kinetics. More importantly, vacuum annealing promoted the presence of surface defects. Furthermore, the mechanistic study through impedance spectroscopy revealed that both charge transfer and surface conductivity are significantly enhanced due the presence of an oxygen-deficient TiO2 surface. These results represent an important step forward in the optimization of nanostructured TiO2-based photoelectrodes, with high potential in photocatalytic applications, including solar fuel production.
机译:在此,我们报告了ZR掺杂和真空退火对阳极氧化TiO2纳米管的载体动力学和界面动力学进行抗旋转水氧化的协同作用。在评估不同的Zr负载和不同的退火条件之后,发现Zr掺杂和真空退火均导致显着增强的光采火效率和光电化学性能。 Zr4 +的Zr4 +的取代导致诸如氧空位的表面缺陷的密度较高,促进Zr4 +上的电子捕获,这降低了电荷重组,因此提高了电荷转移动力学。更重要的是,真空退火促进了表面缺陷的存在。此外,通过阻抗光谱的机械研究显示,由于缺氧TiO 2表面的存在,电荷转移和表面电导率显着增强。这些结果表示在优化纳米结构TiO2的光电图中,具有高潜力的光催化应用,包括太阳能燃料生产,该结果代表了一个重要的一步。

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