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Efficient Oxygen Cycle over PdO-Based Catalysts Induced by Highly Dispersed Zinc Species for Methane Combustion

作者:Qi Zhong, Qiming Sun, Xin Zeng, Weihao Zhang, Rongbing Nie, Shanshan Li, Yi Jiao, Jianjun Chen, Qiulin Zhang, Yaoqiang Chen, Ping Ning · 发表于:ACS Catalysis · 年份:2025 · DOI:10.1021/acscatal.5c00749 · 被引用次数:26 · 研究领域:Catalytic Processes in Materials Science、Catalysis and Oxidation Reactions、Electrocatalysts for Energy Conversion

PdO-based catalysts have been the benchmark for methane combustion but they still present insufficient catalytic reactivity and stability mainly due to the difficult cycling of reactive oxygen species. In this work, PdO nanoparticles modified with highly dispersed zinc species supported on alumina (PdZn/Al 2 O 3 ) were fabricated by an in situ liquid-phase reduction technique. Systematic characterization and DFT calculation results illustrated that zinc oxide enabled an efficient cycle of reactive oxygen species within PdO particles to facilitate methane combustion. Typically, Zn donated rich electrons to the surface lattice oxygen (O latt ) of PdO, thus generating highly reactive O latt coordinated with both Pd and Zn (Pd–O latt –Zn). This catalytically active structure allowed a lower energy barrier for the methane oxidation reaction on PdZn/Al 2 O 3 (1.36 eV) than on Pd/Al 2 O 3 (1.58 eV). The consumed active oxygen within Pd–O latt –Zn was easily replenished by dissociating molecular oxygen, along with smooth circulation of reactive oxygen species obeying the MvK pathway. As anticipated, PdZn/Al 2 O 3 with only 0.38 wt % Pd loading presented higher low-temperature reactivity and durability than Pd/Al 2 O 3 . In-depth mechanistic investigations revealed that reactive oxygen species were produced more smoothly over PdZn/Al 2 O 3 to further dissociate CH 4 and favored the generation of more active formate and carbonate intermediates, thus contributing to its superior catalyt...