兴奋剂
材料科学
降级(电信)
催化作用
分析化学(期刊)
光催化
纳米-
溶胶凝胶
核化学
化学工程
纳米技术
化学
复合材料
光电子学
有机化学
电子工程
工程类
作者
Yin Luo,Jianmin Wu,Qin Zhong,Hengcong Zhang
标识
DOI:10.1515/gps-2021-0063
摘要
Abstract To solve the environmental pollution caused by automobile exhaust in a tunnel, this study has developed a modified nano-TiO 2 based on Fe 3+ and Ce 3+ . The modified nano-TiO 2 is prepared by the sol–gel method, and the modification adopts Fe 3+ single-doping, Ce 3+ sing-doping, and co-doping. The properties were also characterized by X-ray diffraction analysis, UV-vis diffuse reflectance analysis, fluorescence spectroscopy analysis, specific surface area analysis, and paramagnetic resonance popper analysis. The analyses showed that the doping of ions would change the energy band structure of nano-TiO 2 and produce crystal defects, thus improving the photocatalytic activity. Then, a self-fabricated exhaust gas degradation device was used to carry out the exhaust gas degradation experiments. The results showed that the modification improves the catalytic efficiency of nano-TiO 2 , and Fe 3+ , Ce 3+ co-doping > Ce 3+ single-doping > Fe 3+ single-doping > pure TiO 2 . At the dosage of 0.5%, the maximum degradation efficiencies of NO and CO before compensation are 53.85% and 16.39%, respectively, and the maximum degradation rates are 1.04 and 0.93 ppm·min −1 . After compensation, the maximum degradation efficiencies of NO and CO are 20.14% and 6.04%, respectively. The maximum degradation rate is 0.40 and 0.41 ppm·min −1 , respectively.
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