Reconciling the Paradox of SO 2 in the High Temperature NH3‐SCR Reaction: The Role of SO 4 2− in Electronic Structure Remodeling and Mechanism Switching Over a 3DOM Ce‐W‐Ti‐Si Catalyst

ABSTRACT At present, the effect mechanism of SO 2 on high‐temperature denitrification catalysts is unclear. In this study, 3DOM CeWTi 1‐x ‐Si x O 2 catalysts were constructed for high‐temperature NH 3 ‐SCR reaction, and deeply explored the mechanism of SO 2 on the catalyst. Among them, 3DOM CeWTi 0.7 ‐Si 0.3 O 2 catalyst exhibited excellent NO x removal efficiency at 500°C in SCR reaction due to its excellent specific surface area as well as three‐dimensional ordered macroporous‐mesoporous structure. Based on the series of analyses, we concluded that Si and SO 4 2− played distinct roles in accelerating the NH 3 ‐SCR reaction. Specifically, Si incorporated into the Ti matrix through elemental doping, forming a three‐dimensional framework structure that enhanced the catalyst's thermal stability under elevated temperature conditions. Through electron‐withdrawing effects, it altered the catalyst electronic structure and chemical environment. Meanwhile, SO 4 2− formed on the catalyst surface reshaped the surface electronic structure through strong electron‐withdrawing effects. It modified Ce/W active sites, weakened the Ce‐O bond and activated lattice oxygen, and optimized surface acidity, thereby accelerating the SCR reaction. Combining DFT calculations with in situ DRIFTS results, we concluded that the 3DOM CeW‐SO 4 2− /Ti 0.7 ‐Si 0.3 O 2 catalyst primarily followed E‐R and MvK mechanisms. This mechanism reconciled the contradictory phenomena of SO 2 poisoning and SO 2 promotion in NH 3 ‐SCR process.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-24
DOI
https://doi.org/10.1002/adfm.78699
Primary Topic
Catalytic Processes in Materials Science
Type
article
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Reconciling the Paradox of SO 2 in the High Temperature NH3‐SCR Reaction: The Role of SO 4 2− in Electronic Structure Remodeling and Mechanism Switching Over a 3DOM Ce‐W‐Ti‐Si Catalyst

Chao Feng, Runduo Zhang, Zhicheng Tang, Guodong Zhang et al.
Advanced Functional Materials
Catalytic Processes in Materials Science
article

Reconciling the Paradox of SO 2 in the High Temperature NH3‐SCR Reaction: The Role of SO 4 2− in Electronic Structure Remodeling and Mechanism Switching Over a 3DOM Ce‐W‐Ti‐Si Catalyst

Chao Feng, Runduo Zhang, Zhicheng Tang, Guodong Zhang, Haitao Zhang, Yuhang Wang
article en

Abstract

ABSTRACT At present, the effect mechanism of SO 2 on high‐temperature denitrification catalysts is unclear. In this study, 3DOM CeWTi 1‐x ‐Si x O 2 catalysts were constructed for high‐temperature NH 3 ‐SCR reaction, and deeply explored the mechanism of SO 2 on the catalyst. Among them, 3DOM CeWTi 0.7 ‐Si 0.3 O 2 catalyst exhibited excellent NO x removal efficiency at 500°C in SCR reaction due to its excellent specific surface area as well as three‐dimensional ordered macroporous‐mesoporous structure. Based on the series of analyses, we concluded that Si and SO 4 2− played distinct roles in accelerating the NH 3 ‐SCR reaction. Specifically, Si incorporated into the Ti matrix through elemental doping, forming a three‐dimensional framework structure that enhanced the catalyst's thermal stability under elevated temperature conditions. Through electron‐withdrawing effects, it altered the catalyst electronic structure and chemical environment. Meanwhile, SO 4 2− formed on the catalyst surface reshaped the surface electronic structure through strong electron‐withdrawing effects. It modified Ce/W active sites, weakened the Ce‐O bond and activated lattice oxygen, and optimized surface acidity, thereby accelerating the SCR reaction. Combining DFT calculations with in situ DRIFTS results, we concluded that the 3DOM CeW‐SO 4 2− /Ti 0.7 ‐Si 0.3 O 2 catalyst primarily followed E‐R and MvK mechanisms. This mechanism reconciled the contradictory phenomena of SO 2 poisoning and SO 2 promotion in NH 3 ‐SCR process.

Advanced Functional Materials
Lanzhou Institute of Chemical Physics (CN), Lanzhou Petrochemical Polytechnic (CN), University of Chinese Academy of Sciences (CN), Beijing University of Chemical Technology (CN), Shandong University of Science and Technology (CN)
Openalex Percentile: Top 26%
Catalytic Processes in Materials Science
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