Construction of cerium-based highly sulfur-resistant catalysts and NH₃-SCR reactions

催化作用 X射线光电子能谱 硫黄 吸附 化学工程 氧化还原 选择性 化学 分子筛 材料科学 金属 反应机理 壳体(结构) 无机化学 质谱法 大气温度范围 化学反应 纳米技术 活动站点 多相催化 反应性(心理学) 生物分子 反应条件 过渡金属 光谱学
作者
Songxuan Chen,Hao Wang,Liang Yao,Zhi Sun,Hongbin Cao
出处
期刊:Fuel Processing Technology [Elsevier BV]
卷期号:284: 108425-108425 被引量:1
标识
DOI:10.1016/j.fuproc.2026.108425
摘要

A core–shell catalyst with ZSM-5 as the core and CeO₂ as the shell was developed to address the poor sulfur tolerance of conventional Cu-based molecular sieve catalysts. The CeO₂ shell was deposited onto the ZSM-5 surface using a wet chemical method. Active Cu species were then introduced via liquid-phase ion exchange, yielding the Cu/(ZSM-5@CeO₂) core–shell catalyst. A genetic algorithm (GA) was applied to systematically optimize the catalyst composition. The optimal configuration was identified at a Cu loading of 2.92 wt% and a CeO₂/ZSM-5 mass ratio of 0.13. Experimental results showed that the optimized catalyst exhibits excellent low-temperature performance in the NH₃-SCR reaction. Nearly 100% NO conversion was achieved over the temperature range of 225–500 °C, while N₂ selectivity remained above 95%. X-ray photoelectron spectroscopy (XPS) analysis revealed that the CeO₂ shell functioned as a sacrificial layer. It preferentially reacts with SO₂ to form surface sulfates, thereby preventing SO₂ from reaching the internal Cu active sites. This mechanism protects the core acidic sites and redox centers. Overall, the core–shell architecture significantly enhances sulfur resistance and promotes reactant adsorption and activation through shell-induced electronic effects. These findings offer new insights into the design of industrial flue-gas denitration catalysts. • A Cu/(ZSM-5@CeO₂) core–shell catalyst was constructed with ZSM-5 as the core and CeO₂ as the shell. • Genetic algorithm optimization identified an optimal Cu loading of 2.92 wt% and a shell mass ratio of 0.13. • The CeO₂ shell significantly enhanced sulfur resistance through a sacrificial mechanism and physical shielding. • Synergistic effects at the core–shell interface promoted low-temperature redox cycling and high N₂ selectivity.
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