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Enhanced visible-light photocatalytic activity of anatase-rutile mixed-phase nano-size powder given by high-temperature heat treatment

机译:通过高温热处理给出的锐钛矿 - 金红石混合相纳米尺寸粉末增强可见光光催化活性

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Nano-size EVONIK AEROXIDE ? P25 titanium dioxide, TiO 2 , powder was heat-treated at temperatures, 700–900°C, in air. An X-ray diffraction study showed that the P25 powder is composed of approximately 20 and approximately 80 mass% of rutile and anatase phases, respectively. It was also shown that the transformation from anatase to rutile induced by high-temperature heat treatment was almost completed at 750°C, whereas a small amount (less than 3 mass%) of anatase phase was still left even in the powder heat-treated at 900°C. The transformation behaviour was consistent with results obtained by Raman scattering spectroscopy. Raman experiments also indicated that high-temperature heating induced the formation of oxide ion vacancies. Powders were dispersed in methyl orange (MO) aqueous solution, and the bleach rate of MO was measured to evaluate photocatalytic activity under ultraviolet (UV)- and visible-light irradiation. After the heat treatment, the UV-light photocatalytic performance sharply deteriorated. Interestingly, visible-light photocatalytic activity was enhanced by high-temperature heating and reached the highest performance for an 800°C-heated sample, indicating that the P25 powder obtained high visible-light photocatalytic performance after heat treatment. Even after 900°C heat treatment, the photocatalytic performance was higher than that of as-received powder. Enhancement of photocatalytic activities was discussed in relation to visible light absorption and charge carrier transfer.
机译:纳米大小的evonik氧氧化物? P25二氧化钛,TiO 2,粉末在空气中在700-900℃下进行热处理。 X射线衍射研究表明,P25粉末分别由约20且约80质量%的金红石和锐钛矿相组成。还表明,通过高温热处理诱导的锐钛酶转化在750℃下几乎完成,而即使在粉末热处理,仍然仍然留下少量(小于3质量%)的锐钛矿相在900°C。转化行为与拉曼散射光谱获得的结果一致。拉曼实验还表明,高温加热诱导氧化离子空位的形成。将粉末分散在甲基橙(Mo)水溶液中,测量Mo的漂白速率以评估紫外(UV)和可见光照射下的光催化活性。热处理后,紫外光光催化性能大幅劣化。有趣的是,通过高温加热增强可见光光催化活性,达到800℃加热样品的最高性能,表明P25粉末在热处理后获得了高可见光的光催化性能。即使在900°C热处理后,光催化性能高于接收粉末的光催化性能也高。关于可见光吸收和电荷载体转移的讨论了光催化活性的增强。

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