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Effectively enhance catalytic performance by adjusting pH during the synthesis of active components over FeVO4/TiO2-WO3-SiO2 monolith catalysts

Publication ,  Journal Article
Wu, G; Li, J; Fang, Z; Lan, L; Wang, R; Lin, T; Gong, M; Chen, Y
Published in: Chemical Engineering Journal
July 1, 2015

The effect of pH during co-precipitation on the structural and physicochemical properties of a FeVO4/TiO2-WO3-SiO2 catalyst was investigated by using XRD, SEM, HR-TEM, BET, TPD, TPR and XPS. The as-prepared catalysts were tested in an NH3-SCR reaction within a wide temperature range of 175-500°C. When the active component FeVO4 was synthesized at pH=4.5, the corresponding catalyst (FeVO4-4.5-C) showed the best catalytic activities with high resistance to H2O and SO2 poisoning under a gas hourly space velocity of 30,000h-1. It could even reach over 90% NOx conversions in a wide temperature range of 246-476°C with relatively high N2 selectivity in the presence of 10% H2O. Taking the structure performances into consideration, the FeVO4/TiO2-WO3-SiO2 may be defined as a kind of structure-sensitive catalyst. For such FeVO4-4.5-C, the SEM and TEM results showed that it displayed relatively uniform particles and crystal morphologies with the smallest average particle sizes. The NH3-TPD patterns showed that it had the largest amount of acid sites. The H2-TPR and XPS results indicated that the remarkably improved redox performance and deep surface-enrichment of FeVO4 played a key role in its enhanced catalytic performance. The surface-enrichment and the particle sizes effect induced, synergistically, a larger amount of oxygen vacancies. All of the above-mentioned account for the excellent catalytic performance. Summarizing these characterization results, it can be concluded that the pH values adopted during the synthesis can greatly affect the nano-structures and morphologies, which play a dominant role in the catalytic activity.

Duke Scholars

Published In

Chemical Engineering Journal

DOI

ISSN

1385-8947

Publication Date

July 1, 2015

Volume

271

Start / End Page

1 / 13

Related Subject Headings

  • Chemical Engineering
  • 4016 Materials engineering
  • 4011 Environmental engineering
  • 4004 Chemical engineering
  • 0907 Environmental Engineering
  • 0905 Civil Engineering
  • 0904 Chemical Engineering
 

Citation

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Wu, G., Li, J., Fang, Z., Lan, L., Wang, R., Lin, T., … Chen, Y. (2015). Effectively enhance catalytic performance by adjusting pH during the synthesis of active components over FeVO4/TiO2-WO3-SiO2 monolith catalysts. Chemical Engineering Journal, 271, 1–13. https://doi.org/10.1016/j.cej.2015.02.012
Wu, G., J. Li, Z. Fang, L. Lan, R. Wang, T. Lin, M. Gong, and Y. Chen. “Effectively enhance catalytic performance by adjusting pH during the synthesis of active components over FeVO4/TiO2-WO3-SiO2 monolith catalysts.” Chemical Engineering Journal 271 (July 1, 2015): 1–13. https://doi.org/10.1016/j.cej.2015.02.012.
Wu G, Li J, Fang Z, Lan L, Wang R, Lin T, et al. Effectively enhance catalytic performance by adjusting pH during the synthesis of active components over FeVO4/TiO2-WO3-SiO2 monolith catalysts. Chemical Engineering Journal. 2015 Jul 1;271:1–13.
Wu, G., et al. “Effectively enhance catalytic performance by adjusting pH during the synthesis of active components over FeVO4/TiO2-WO3-SiO2 monolith catalysts.” Chemical Engineering Journal, vol. 271, July 2015, pp. 1–13. Scopus, doi:10.1016/j.cej.2015.02.012.
Wu G, Li J, Fang Z, Lan L, Wang R, Lin T, Gong M, Chen Y. Effectively enhance catalytic performance by adjusting pH during the synthesis of active components over FeVO4/TiO2-WO3-SiO2 monolith catalysts. Chemical Engineering Journal. 2015 Jul 1;271:1–13.
Journal cover image

Published In

Chemical Engineering Journal

DOI

ISSN

1385-8947

Publication Date

July 1, 2015

Volume

271

Start / End Page

1 / 13

Related Subject Headings

  • Chemical Engineering
  • 4016 Materials engineering
  • 4011 Environmental engineering
  • 4004 Chemical engineering
  • 0907 Environmental Engineering
  • 0905 Civil Engineering
  • 0904 Chemical Engineering