石墨烯量子点敏化与氮掺杂有序介孔TiO2薄膜在水分解光催化中的协同效应(会议报告)

Syed Z. Islam, N. Wanninayake, Allen D. Reed, D. Kim, S. Rankin
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引用次数: 0

摘要

TiO2薄膜的光学和电子特性为光催化、光伏和用于能源生产的光导体等多种应用提供了巨大的机会。尽管TiO2有许多吸引人的特性,但关键的挑战包括TiO2固有的不能吸收可见光和光激发载流子的快速重组。在这项研究中,我们制备了石墨烯量子点敏化和氮掺杂共改性的有序介孔TiO2薄膜(GQD-N-TiO2),用于可见光下光电化学水分解制氢。首先,采用表面活性剂模板化溶胶-凝胶法制备立方有序介孔TiO2薄膜。然后,用N2/Ar等离子体处理TiO2薄膜,将取代的N原子掺入TiO2晶格中。通过化学氧化碳纳米洋葱制备GQDs。GQDs的固定是通过GQDs的羧基与预先固定(3-氨基丙基)三乙氧基硅烷(APTES)形成的N-TiO2的胺基反应来完成的。通过紫外可见光谱、红外光谱和扫描电镜观察了GQDs在N-TiO2上的成功固定。此外,zeta电位和接触角测量显示表面电荷和亲水性增强,证实了GQDs的成功固定。与卤素灯泡光源下的TiO2膜相比,GQD-N-TiO2膜、N-TiO2膜和GQD-TiO2膜的光电流分别增强了400倍、130倍和8倍。这种突出的增强归功于介孔膜的高表面积以及氮掺杂和GQD敏化的协同效应,从而增强了可见光吸收,有效的电荷分离和传输。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synergistic effects of graphene quantum dot sensitization and nitrogen doping of ordered mesoporous TiO2 thin films for water splitting photocatalysis(Conference Presentation)
The optical and electronic properties of TiO2 thin films provide tremendous opportunities in several applications including photocatalysis, photovoltaics and photoconductors for energy production. Despite many attractive features of TiO2, critical challenges include the innate inability of TiO2 to absorb visible light and the fast recombination of photoexcited charge carriers. In this study, we prepared ordered mesoporous TiO2 films co-modified by graphene quantum dot sensitization and nitrogen doping (GQD-N-TiO2) for hydrogen production from photoelectrochemical water splitting under visible light irradiation. First, cubic ordered mesoporous TiO2 films were prepared by a surfactant templated sol-gel method. Then, TiO2 films were treated with N2/Ar plasma for the incorporation of substitutional N atoms into the lattice of TiO2. GQDs were prepared by chemically oxidizing carbon nano-onions. The immobilization of GQDs was accomplished by reacting carboxyl groups of GQDs with amine groups of N-TiO2 developed by the prior immobilization of (3-aminopropyl)triethoxysilane (APTES). Successful immobilization of GQDs onto N-TiO2 was probed by UV-Vis, FT-IR, and scanning electron microscopy. Further, zeta potential and contact angle measurements showed enhanced surface charge and hydrophilicity, confirming the successful immobilization of GQDs. The GQD-N-TiO2, N-TiO2 and GQD-TiO2 films showed 400 times, 130 times and 8 times photocurrent enhancement, respectively, compared to TiO2 films for water splitting with a halogen bulb light source. This outstanding enhancement is attributed to the high surface area of mesoporous films and synergistic effects of nitrogen doping and GQD sensitization resulting in enhanced visible light absorption, efficient charge separation and transport.
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