TY - JOUR
T1 - Fabrication of SiC catalytic filter with low vanadium loading and highly uniform structure for efficient NO reduction and dust removal
AU - Xu, Xiangsen
AU - Qiao, Jiangxiao
AU - Yu, Shibo
AU - Chen, Jiahao
AU - Zeng, Yiqing
AU - Zhang, Feng
AU - Zhong, Zhaoxiang
AU - Xing, Weihong
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2025/2/19
Y1 - 2025/2/19
N2 - The rational design of catalysts and the establishment of uniform filter structure are key points in the development of high-performance catalytic filters. To resolve the issue of increased N2O concentration in catalysts with high vanadium content at high temperatures, a range of catalytic filters with low vanadium loading were fabricated by partially substituting vanadium in 6VWTi catalysts with transition metals (Mn, Cu, Co and Ce). The experimental results show that the introduction of Ce, which leads to rich surface-adsorbed reactive oxygen species, good redox properties and appropriate surface acidity, thus the 1V5CeWTi/SiC catalytic filter exhibits the highest denitration efficiency (NO conversion >90 % at the temperature of 300–500 °C without N2O production), presenting significant advantages in contrast to 1VWTi/SiC and 6VWTi/SiC. Furthermore, the preparation technology was optimized to obtain a more uniform structure, which enhanced NH3-SCR performance and reduced filter pressure drop. The optimized 1V5CeWTi/SiC also exhibited exceptional resistance to SO2 + H2O and long-term stability for a duration of 200 h at 300 °C, as well as displays a noteworthy efficiency in filtering particulate matter (10 μm SiO2). Therefore, the optimized 1V5CeWTi/SiC catalytic filter holds great potential in the realm of gas purification.
AB - The rational design of catalysts and the establishment of uniform filter structure are key points in the development of high-performance catalytic filters. To resolve the issue of increased N2O concentration in catalysts with high vanadium content at high temperatures, a range of catalytic filters with low vanadium loading were fabricated by partially substituting vanadium in 6VWTi catalysts with transition metals (Mn, Cu, Co and Ce). The experimental results show that the introduction of Ce, which leads to rich surface-adsorbed reactive oxygen species, good redox properties and appropriate surface acidity, thus the 1V5CeWTi/SiC catalytic filter exhibits the highest denitration efficiency (NO conversion >90 % at the temperature of 300–500 °C without N2O production), presenting significant advantages in contrast to 1VWTi/SiC and 6VWTi/SiC. Furthermore, the preparation technology was optimized to obtain a more uniform structure, which enhanced NH3-SCR performance and reduced filter pressure drop. The optimized 1V5CeWTi/SiC also exhibited exceptional resistance to SO2 + H2O and long-term stability for a duration of 200 h at 300 °C, as well as displays a noteworthy efficiency in filtering particulate matter (10 μm SiO2). Therefore, the optimized 1V5CeWTi/SiC catalytic filter holds great potential in the realm of gas purification.
KW - Low NO production
KW - Low vanadium loading
KW - NH-SCR
KW - SiC catalytic filter
KW - Uniform structure
UR - http://www.scopus.com/inward/record.url?scp=85203267580&partnerID=8YFLogxK
U2 - 10.1016/j.seppur.2024.129545
DO - 10.1016/j.seppur.2024.129545
M3 - 文章
AN - SCOPUS:85203267580
SN - 1383-5866
VL - 354
JO - Separation and Purification Technology
JF - Separation and Purification Technology
M1 - 129545
ER -