TY - JOUR
T1 - Reduction of SO2 into sulfur over Ce-based catalyst
T2 - Performance optimizations and reaction mechanisms
AU - Xu, Mutao
AU - Chen, Liguo
AU - Cheng, Xinpei
AU - Meng, Xuelu
AU - Jin, Qijie
AU - Zhu, Chengzhang
AU - Yang, Jian
AU - Xu, Haitao
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2024/10
Y1 - 2024/10
N2 - Sulfur dioxide catalytic reduction is sustainable with acceptable desulfurizing efficiency while recovering valuable solid sulfur. However, the long-term challenge lies in enhancing catalytic activity and selectivity. In this work, we constructed Ce-based catalysts with controllable metal loadings by a straightforward impregnation method. By strategically screening metal species and loading amounts, efficient conversion of SO2 into sulfur has been achieved. Experiments show that the 15 % Gd-Ce-Ox exhibited superior catalytic activity, achieving an impressive 97 % conversion of SO2 and 98 % selectivity towards sulfur at 400 °C. Furthermore, the reduction of SO2 by CO over the 15 % Gd-Ce-Ox catalysts followed the L-H and E-R mechanisms. This involved the adsorption of SO2 on the catalyst surface leading to the formation of weakly adsorbed sulfate, dinuclear bidentate sulfate, sulfite and bisulfite species, followed by the participation of CO in the reaction resulting in the generation of weakly adsorbed CO, bicarbonate, monodentate carbonate and uncoordinated CO32-. Ultimately, the reaction culminates in the formation of the sulfur and CO2. This work provides a simple and efficient method for the preparation of sulfur by controlled metal-loaded Ce-based catalysts, which effectively realizes the sulfur dioxide resourceization of industrial flue gas.
AB - Sulfur dioxide catalytic reduction is sustainable with acceptable desulfurizing efficiency while recovering valuable solid sulfur. However, the long-term challenge lies in enhancing catalytic activity and selectivity. In this work, we constructed Ce-based catalysts with controllable metal loadings by a straightforward impregnation method. By strategically screening metal species and loading amounts, efficient conversion of SO2 into sulfur has been achieved. Experiments show that the 15 % Gd-Ce-Ox exhibited superior catalytic activity, achieving an impressive 97 % conversion of SO2 and 98 % selectivity towards sulfur at 400 °C. Furthermore, the reduction of SO2 by CO over the 15 % Gd-Ce-Ox catalysts followed the L-H and E-R mechanisms. This involved the adsorption of SO2 on the catalyst surface leading to the formation of weakly adsorbed sulfate, dinuclear bidentate sulfate, sulfite and bisulfite species, followed by the participation of CO in the reaction resulting in the generation of weakly adsorbed CO, bicarbonate, monodentate carbonate and uncoordinated CO32-. Ultimately, the reaction culminates in the formation of the sulfur and CO2. This work provides a simple and efficient method for the preparation of sulfur by controlled metal-loaded Ce-based catalysts, which effectively realizes the sulfur dioxide resourceization of industrial flue gas.
KW - Catalytic reduction
KW - Gd-Ce-Ox
KW - Sulfur
KW - Sulfur dioxide
UR - http://www.scopus.com/inward/record.url?scp=85203187875&partnerID=8YFLogxK
U2 - 10.1016/j.jece.2024.114064
DO - 10.1016/j.jece.2024.114064
M3 - 文章
AN - SCOPUS:85203187875
SN - 2213-2929
VL - 12
JO - Journal of Environmental Chemical Engineering
JF - Journal of Environmental Chemical Engineering
IS - 5
M1 - 114064
ER -