沸石
耐久性
吸附
壳体(结构)
化学工程
芯(光纤)
材料科学
化学
工程类
复合材料
催化作用
物理化学
有机化学
作者
Xiaoxin Chen,Maiyan Nan,Jun Huang,Lin Li,Zunhao Zhang,Guoju Yang
标识
DOI:10.1021/acs.est.5c06402
摘要
Pd-zeolites are promising passive NOx adsorber (PNA) materials for mitigating cold-start emissions from lean-burn engines. However, their practical deployment is constrained by insufficient densities and dispersion of isolated Pd2+ active sites as well as their susceptibility to hydrothermal degradation and phosphorus poisoning encountered in vehicle exhaust environments. Herein, we develop a rationally engineered core-shell Pd/SSZ-13@Al2O3 composite, featuring a Pd/SSZ-13 core encapsulated within a mesoporous Al2O3 shell. This hierarchical architecture facilitates the controlled migration and dispersion of Pd2+ species, significantly enriching and stabilizing isolated Pd active sites within the zeolite core. Comprehensive characterization and density functional theory calculations confirm that the Al2O3 shell serves as a robust barrier, forming stable aluminum phosphate species that prevent phosphorus infiltration and safeguard both the zeolite framework integrity and Pd2+ active sites from environmental degradation. Catalytic evaluations revealed that Pd/SSZ-13@Al2O3 exhibited superior NOx adsorption capacity, favorable NOx desorption behavior, and exceptional stability under hydrothermal and phosphorus poisoning conditions, outperforming conventional Pd-zeolite catalysts. This work establishes a generalizable core-shell design strategy for stabilizing atomically dispersed active sites in harsh environments, offering broad implications for the development of durable catalytic materials in air pollution control and environmental remediation.
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