Oxygen vacant gray shell and interior ordered TiO2 core for enhanced visible-light photocatalysis

IF 9.2 2区 工程技术 Q1 ENERGY & FUELS
Alireza Khataee , Ali Saedi Vand Behpour , Esmail Doustkhah , Ramin Hassandoost
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引用次数: 0

Abstract

Oxygen vacancy in metal oxides serves a key function in improving their (photo)(electro)catalytic activity, though quantifying and understanding the exact location and making the oxygen vacancy functional is challenging. Here, we used the depth profiling technique during the X-ray photoelectron spectroscopy (XPS) measurement to investigate the oxygen vacancy in titania created by treating it with a borohydride compound at 350 °C. By etching the surface through the sputtering Ar ions on the sample, the first few layers were removed from the surface of the titania to understand the interior compositions. The results show that by etching only the first few layers, the oxygen ratio is enhanced by 16.5 % compared to the pristine form, but further etching and going into more depth almost show the same ratio. Results also show that these defects are initially covered by NaBO2, blocking the surface photoactivity. The obtained titania is a gray-shaded titania that shows enhanced photocatalytic activity than the pristine P25 under visible light in degradation tests, achieving 81.47 % degradation efficiency (DE) for oxytetracycline (OTC), with the increased surface area and active defect sites.

Abstract Image

氧空灰色外壳和内部有序TiO2核心用于增强可见光光催化
金属氧化物中的氧空位在提高其(光)(电)催化活性方面起着关键作用,尽管量化和了解氧空位的确切位置并使其发挥作用具有挑战性。在这里,我们在x射线光电子能谱(XPS)测量中使用深度剖面技术来研究在350°C下用硼氢化物处理二氧化钛所产生的氧空位。通过溅射氩离子在样品表面蚀刻,去除二氧化钛表面的前几层,以了解内部成分。结果表明,与原始形式相比,仅蚀刻前几层的氧比提高了16.5%,但进一步蚀刻和更深入的氧比几乎相同。结果还表明,这些缺陷最初被NaBO2覆盖,阻碍了表面光活性。得到的二氧化钛呈灰色阴影,在可见光下的降解测试中,其光催化活性比原始P25增强,对土霉素(OTC)的降解效率(DE)达到81.47%,表面积和活性缺陷位点增加。
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来源期刊
Sustainable Materials and Technologies
Sustainable Materials and Technologies Energy-Renewable Energy, Sustainability and the Environment
CiteScore
13.40
自引率
4.20%
发文量
158
审稿时长
45 days
期刊介绍: Sustainable Materials and Technologies (SM&T), an international, cross-disciplinary, fully open access journal published by Elsevier, focuses on original full-length research articles and reviews. It covers applied or fundamental science of nano-, micro-, meso-, and macro-scale aspects of materials and technologies for sustainable development. SM&T gives special attention to contributions that bridge the knowledge gap between materials and system designs.
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