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Facile One-Step Route for the Development of in Situ Cocatalyst-Modified Ti3+ Self-Doped TiO2 for Improved Visible-Light Photocatalytic Activity

机译:简便的一步法开发原位助催化剂修饰的Ti3 +自掺杂TiO2,改善可见光的光催化活性

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Development of visible-light-driven photocatalysts by employing a relatively simple, efficient, and cost-effective one-step process is essential for commercial applications. Herein, we report for the first time the synthesis of in situ Cu-ion modified Ti3+ self-doped rutile TiO2 by such a facile one-step solution precursor plasma spray (SPPS) process using a water-soluble titanium precursor. In the SPPS process, Ti3+ self-doping on Ti4+ of rutile TiO2 is found to take place because of electron transfer from the created oxygen vacancies to Ti4+-ions. In situ Cu modification of the above Ti3+ self-doped rutile TiO2 by additionally introducing a Cu solution into plasma plume is also demonstrated. While the Ti3+ self-doping induces broad absorption in the visible-light region, the addition of Cu ion leads to even broader absorption in the visible region owing to resulting synergistic properties. The above materials were evaluated for various self-cleaning photocatalytic applications under visible-light illumination. Cu-ion modified Ti3+ self-doped rutile TiO2 is noted to exhibit a remarkably enhanced visible-light activity in comparison with Ti3+ self-doped rutile TiO2, with the latter itself outperforming commercial TiO2 photocatalysts, thereby suggesting the suitability of the material for indoor applications. The broad visible-light absorption by Ti3+ self-doping, the holes with strong oxidation power generated in the valence band, and electrons in Ti3+ isolated states that are effectively separated into the high reductive sites of Cu ions upon visible-light irradiation, accounts for improved photocatalytic activity. Moreover, the synthesis process (SPPS) provides a valuable alternative to orthodox multistep processes for the preparation of such visible-light-driven photocatalysts.
机译:通过采用相对简单,有效和具有成本效益的一步法开发可见光驱动的光催化剂对于商业应用而言至关重要。本文中,我们首次报道了使用水溶性钛前体通过这种简便的一步法溶液前体等离子体喷涂(SPPS)工艺合成原位Cu离子改性的Ti3 +自掺杂金红石型TiO2。在SPPS工艺中,由于电子从产生的氧空位转移到Ti4 +离子上,金红石型TiO2的Ti4 +上发生了Ti3 +自掺杂。还证明了通过向等离子体羽流中另外引入Cu溶液来对上述Ti 3+自掺杂金红石TiO 2进行原位Cu改性。尽管Ti3 +自掺杂在可见光区域引起了广泛的吸收,但是由于产生了协同作用,添加Cu离子导致在可见光区域产生了更宽的吸收。对上述材料在可见光照射下的各种自清洁光催化应用进行了评估。与Ti3 +自掺杂的金红石TiO2相比,Cu离子改性的Ti3 +自掺杂的金红石TiO2表现出显着增强的可见光活性,后者的性能优于市售的TiO2光催化剂,从而表明该材料适用于室内应用。 Ti3 +自掺杂引起的广泛可见光吸收,在价带中产生具有强氧化能力的空穴以及处于Ti3 +隔离状态的电子,这些电子在可见光照射下被有效分离为Cu离子的高还原位。改善了光催化活性。此外,合成方法(SPPS)为制备这种可见光驱动的光催化剂提供了传统的多步方法的有价值的替代方法。

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