Shu-xian Wang
Shanghai University of Electric Power
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Shu-xian Wang.
RSC Advances | 2016
Ning-zhi Yang; Rui-tang Guo; Qing-shan Wang; Wei-guo Pan; Qi-lin Chen; Chen-zi Lu; Shu-xian Wang
The deactivation mechanism of phosphorous on a Mn/TiO2 catalyst for selective catalytic reduction of NO with NH3 was investigated in this study. It was found that the NH3-SCR reaction over the Mn/TiO2 catalyst obeyed the Langmuir–Hinshelwood mechanism. From the characterization results, it could be found the addition of phosphorous on the Mn/TiO2 catalyst would decrease its reducibility and inhibit the adsorption of chemisorbed oxygen and NOx species on its surface. As a result, the P-doped Mn/TiO2 catalyst was deactivated.
RSC Advances | 2017
Rui-tang Guo; Ming-yuan Li; Peng Sun; Shu-ming Liu; Shu-xian Wang; Wei-guo Pan; Shuai-wei Liu; Jian Liu; Xiao Sun
Phosphorous has a deactivation effect on an SCR catalyst. In this study, the effect of Mo modification on the resistance to P species of a Mn–Ti catalyst for selective catalytic reduction of NOx with NH3 was investigated. It was found that the addition of Mo could greatly improve the P species tolerance of the Mn–Ti catalyst. From the characterization results of BET, XRD, H2-TPR, NH3-TPD and XPS, it could be concluded that the modification of the Mn–Ti catalyst by Mo could enhance its specific surface area, redox ability and NH3 adsorption capacity, along with the generation of more surface chemisorbed oxygen species, as a result, greatly enhancing the P species resistance of the Mn–Ti catalyst. The results of an in situ DRIFT study indicated that the NH3-SCR reactions over Mn–Ti and Mn–Mo–Ti catalysts were governed by L–H mechanism (≤200 °C) and E–R mechanism (>200 °C) respectively.
RSC Advances | 2016
Wei Li; Rui-tang Guo; Shu-xian Wang; Wei-guo Pan; Qi-lin Chen; Ming-yuan Li; Peng Sun; Shu-ming Liu
A series of Mn/CeSiOx catalysts were prepared by the wet impregnation method and used for selective catalytic reduction of NO with NH3. As can be seen from the experimental results, the Mn/CeSiOx catalyst with a Ce/Si molar ratio of 2/1 showed excellent low-temperature SCR activity, high N2 selectivity and excellent SO2 and H2O tolerance. The relationship between the CeSiOx support and the SCR performance of Mn/CeSiOx (2 : 1) catalyst was investigated based on the characterization results of N2 adsorption, XRD, XPS, H2-TPR, NH3-TPD and in situ DRIFT. The strong interaction between Ce and Si resulted in the good dispersion of Mn species on the support; correspondingly, the redox ability and NH3 adsorption capacity were greatly enhanced. The results of in situ DRIFT study revealed that the NH3-SCR reactions over Mn/CeO2 and Mn/CeSiOx (2 : 1) mainly obeyed both the E–R mechanism and the L–H mechanism. Furthermore, the formation of more Mn4+ and chemisorbed oxygen greatly facilitates the oxidation of NO to NO2, as a result, promoting the low-temperature SCR performance of Mn/CeSiOx (2 : 1).
Fuel | 2016
Ning-zhi Yang; Rui-tang Guo; Yuan Tian; Wei-guo Pan; Qi-lin Chen; Qing-shan Wang; Chen-zi Lu; Shu-xian Wang
Fuel Processing Technology | 2016
Wei Li; Rui-tang Guo; Shu-xian Wang; Wei-guo Pan; Qi-lin Chen; Ming-yuan Li; Peng Sun; Shu-ming Liu
Applied Catalysis A-general | 2017
Peng Sun; Rui-tang Guo; Shu-ming Liu; Shu-xian Wang; Wei-guo Pan; Ming-yuan Li
Fuel | 2016
Qi-lin Chen; Rui-tang Guo; Qing-shan Wang; Wei-guo Pan; Wenhuan Wang; Ning-zhi Yang; Chen-zi Lu; Shu-xian Wang
Applied Surface Science | 2016
Ning-zhi Yang; Rui-tang Guo; Wei-guo Pan; Qi-lin Chen; Qing-shan Wang; Chen-zi Lu; Shu-xian Wang
Journal of Molecular Catalysis A-chemical | 2015
Rui-tang Guo; Qing-shan Wang; Wei-guo Pan; Qi-lin Chen; Hong-lei Ding; Xue-feng Yin; Ning-zhi Yang; Chen-zi Lu; Shu-xian Wang; Yi-chao Yuan
Physical Chemistry Chemical Physics | 2017
Shu-xian Wang; Rui-tang Guo; Wei-guo Pan; Ming-yuan Li; Peng Sun; Shu-ming Liu; Shuai-wei Liu; Xiao Sun; Jian Liu