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Vapor-phase hydrothermal synthesis of rutile TiO2 nanostructured film with exposed pyramid-shaped (1 1 1) surface and superiorly photoelectrocatalytic performance

机译:气相水热合成金红石型TiO2纳米结构膜,其表面呈金字塔形(1 1 1),且具有优异的光电催化性能

摘要

Rutile TiO2 nanostructured film with exposed pyramid-shaped (111) surface was successfully fabricated using metal titanium foil as substrate through a facile vapor-phase hydrothermal method. The fabricated rutile TiO2 film was composed of vertically aligned rod-like structures with diameters ranged from 400 to 700 nm and thickness of ca. 2.0 孮 The obtained rutile TiO2 film as photoanode exhibited excellent photoelectrocatalytic activity toward water oxidation and rhodamine B decolorization under UV illumination, which was more than 3.5 and 1.2 times of that obtained by highly ordered anatase TiO2 nanotube array film photoanode under the same experimental conditions, respectively. The excellent photoelectrocatalytic performance of the rutile TiO2 film photoanode could be due to the superior photoelectron transfer property and the high oxidative capability of {111} crystal facets. The superior photoelectron transfer capability of the photoanodes was manifested by the inherent resistance (R0) of the photoanodes using a simple photoelectrochemical method. The calculated R0 values were 50.5 and 86.2 O for the rutile TiO2 nanostructured film and anatase TiO2 nanotube array film, respectively. Lower R0 value of the rutile TiO2 photoanode indicated a superior photoelectron transfer capability owing to good single crystal property of the rod-like rutile nanostructure. Almost identical valence band level (1.94 eV) of the rutile TiO2 nanostructured film and anatase TiO2 nanotube array film (meaning a similar oxidation capability) further confirmed the significant role of photoelectron transfer capability and exposed high-energy {111} crystal facets for improved photoelectrocatalytic performance of the rutile TiO2 nanostructured film photoanode.
机译:以金属钛箔为基材,通过简便的气相水热法成功制备了具有暴露的金字塔形(111)表面的金红石型TiO2纳米结构薄膜。制成的金红石型TiO2薄膜由垂直排列的棒状结构组成,其直径范围为400至700 nm,厚度约为。 2.0孮所得的金红石型TiO2薄膜在紫外光照射下对水氧化和若丹明B脱色表现出优异的光电催化活性,是相同实验条件下高锐钛型TiO2纳米管阵列薄膜光阳极的光催化性能,分别是其的3.5倍和1.2倍,分别。金红石型TiO2薄膜光阳极具有优异的光电催化性能,可能是由于{111}晶面具有优异的光电子转移性能和高氧化能力。使用简单的光电化学方法通过光阳极的固有电阻(R0)可以显示出光阳极的优异的光电子转移能力。金红石型TiO2纳米结构膜和锐钛矿型TiO2纳米管阵列膜的R0值分别为50.5和86.2O。金红石型TiO2光电阳极的较低R0值表明,由于棒状金红石型纳米结构具有良好的单晶性质,因此具有优异的光电子转移能力。金红石型TiO2纳米结构膜和锐钛矿型TiO2纳米管阵列膜几乎相同的价带能级(1.94 eV)(意味着相似的氧化能力)进一步证实了光电子转移能力和暴露的高能{111}晶面对改善光电催化的显著作用。金红石型TiO2纳米结构薄膜光阳极的性能

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