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Carbon Nanotubes Incorporated Z-Scheme Assembly of AgBr/TiO2 for Photocatalytic Hydrogen Production under Visible Light Irradiations

机译:碳纳米管结合AgBr / TiO2的Z方案组装用于可见光照射下的光催化制氢

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摘要

Photocatalytic H production is a promising strategy toward green energy and alternative to carbon-based fuels which are the root cause of global warming and pollution. In this study, carbon nanotubes (CNTs) incorporated Z-scheme assembly of AgBr/TiO was developed for photocatalytic H production under visible light irradiations. Synthesized photocatalysts were characterized through transmission electron microscope (TEM), X-ray photoelectron spectra (XPS), X-ray diffractometer (XRD), Fourier transform infrared (FTIR), photoluminescence spectra (PL), Brunauer Emmet-Teller(BET), and UV-vis spectroscopy analysis techniques. The composite photocatalysts exhibited a H production of 477 ppm which was three-folds higher than that produced by TiO . The good performance was attributed to the strong interaction of three components and the reduced charge recombination, which was 89 and 56.3 times lower than the TiO and AgBr/TiO . Furthermore, the role of surface acidic and basic groups was assessed and the photocatalytic results demonstrated the importance of surface functional groups. In addition, the composites exhibited stability and reusability for five consecutive cycles of reaction. Thus, improved performance of the photocatalyst was credited to the CNTs as an electron mediator, surface functional groups, higher surface area, enhanced charge separation and extended visible light absorption edge. This work provides new development of Z-scheme photocatalysts for sustainable H production.
机译:光催化制氢是实现绿色能源和替代碳基燃料的有前途的战略,而碳基燃料是全球变暖和污染的根本原因。在这项研究中,开发了碳纳米管(CNTs)结合了AgBr / TiO的Z-方案组件,用于在可见光照射下光催化制氢。合成的光催化剂通过透射电子显微镜(TEM),X射线光电子能谱(XPS),X射线衍射仪(XRD),傅立叶变换红外光谱(FTIR),光致发光光谱(PL),Brunauer Emmet-Teller(BET),和紫外可见光谱分析技术。复合光催化剂显示出477 ppm的H生成量,是TiO生成的H生成量的三倍。良好的性能归因于三组分之间的强相互作用和降低的电荷复合,这比TiO和AgBr / TiO分别低89和56.3倍。此外,评估了表面酸性和碱性基团的作用,光催化结果证明了表面官能团的重要性。另外,该复合物在五个连续的反应循环中显示出稳定性和可重复使用性。因此,将光催化剂的改进性能归功于作为电子介体的CNT,表面官能团,更高的表面积,增强的电荷分离和扩展的可见光吸收边缘。这项工作为可持续的H生产提供了Z型光催化剂的新开发。

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