Fundamental insight into copper-based zeolite catalysts for NH3-SCR: Two decades’ progress and future perspectives

Amidst tightening mobile-source emission regulations, ammonia selective catalytic reduction remains the dominant post-treatment technology for NO x removal, with copper-exchanged zeolites (Cu-zeolites) serving as benchmark catalysts. Here, we systematically survey zeolite topologies—such as MFI, CHA, AEI, and LTA—evaluating their catalytic performance, reaction mechanisms, hydrothermal stability, and resistance to poisoning. A comprehensive overall pathway of sequential two-NO activation on dual ZCuOH sites is unified and complements the established L-NH 3 (NH 3 bond to solvated Cu 2+ ions) activation model in the Reduction Half-Cycle. This work provides fundamental insights into the performance, hydrothermal stability, and SO 2 resistance of Cu-based zeolites. Therefore, the fundamentals and new mechanistic insights of hydrothermal aging are summarized over Cu-SSZ-13, while highlighting Cu-SSZ-39 as an intrinsically robust successor. We dissect the SO 2 poisoning mechanisms of Cu-CHA, demonstrating that engineering the atomic-scale distribution of Cu enhances both sulfur tolerance and hydrothermal stability. Supplementary strategies ( e.g ., constructing protective/sacrificial sites, co-crystallization, and core-shell structures) are also considered beneficial. Beyond durability, we also focus on the two-dimensional PST-9 zeolite and OFF/ERI intergrowths zeolite for the future challenge of diffusion. Finally, we outline future research frontiers, aiming to unify Cu-zeolite theory into a mechanistic framework that translates fundamental insights into rational design principles for next-generation catalysts.

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Journal
CHINESE JOURNAL OF CATALYSIS (CHINESE VERSION)
Published
2026-09-24
DOI
https://doi.org/10.1016/s1872-2067(26)65136-4
Primary Topic
Catalytic Processes in Materials Science
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article
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article

Fundamental insight into copper-based zeolite catalysts for NH3-SCR: Two decades’ progress and future perspectives

Ruiyuan Liu, Chengyang Yin, Chengming Zhong, Xiaofei Song et al.
CHINESE JOURNAL OF CATALYSIS (CHINESE VERSION)
Catalytic Processes in Materials Science
article

Fundamental insight into copper-based zeolite catalysts for NH3-SCR: Two decades’ progress and future perspectives

Ruiyuan Liu, Chengyang Yin, Chengming Zhong, Xiaofei Song, Jia Hou, Jian Liu, Zhen Zhao
article en

Abstract

Amidst tightening mobile-source emission regulations, ammonia selective catalytic reduction remains the dominant post-treatment technology for NO x removal, with copper-exchanged zeolites (Cu-zeolites) serving as benchmark catalysts. Here, we systematically survey zeolite topologies—such as MFI, CHA, AEI, and LTA—evaluating their catalytic performance, reaction mechanisms, hydrothermal stability, and resistance to poisoning. A comprehensive overall pathway of sequential two-NO activation on dual ZCuOH sites is unified and complements the established L-NH 3 (NH 3 bond to solvated Cu 2+ ions) activation model in the Reduction Half-Cycle. This work provides fundamental insights into the performance, hydrothermal stability, and SO 2 resistance of Cu-based zeolites. Therefore, the fundamentals and new mechanistic insights of hydrothermal aging are summarized over Cu-SSZ-13, while highlighting Cu-SSZ-39 as an intrinsically robust successor. We dissect the SO 2 poisoning mechanisms of Cu-CHA, demonstrating that engineering the atomic-scale distribution of Cu enhances both sulfur tolerance and hydrothermal stability. Supplementary strategies ( e.g ., constructing protective/sacrificial sites, co-crystallization, and core-shell structures) are also considered beneficial. Beyond durability, we also focus on the two-dimensional PST-9 zeolite and OFF/ERI intergrowths zeolite for the future challenge of diffusion. Finally, we outline future research frontiers, aiming to unify Cu-zeolite theory into a mechanistic framework that translates fundamental insights into rational design principles for next-generation catalysts.

CHINESE JOURNAL OF CATALYSIS (CHINESE VERSION)Vol. 89
China University of Petroleum, Beijing (CN), Shenyang Normal University (CN)
Openalex Percentile: Top 26%
Catalytic Processes in Materials Science
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