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Size-Controlled Synthesis of Pd Nanocatalysts on Defect-Engineered CeO 2 for CO 2 Hydrogenation

作者:Fangxian Cao, Zhouying Song, Zhanming Zhang, Yong-Shan Xiao, Mingkai Zhang, Xun Hu, Zhong‐Wen Liu, Yongquan Qu · 发表于:ACS Applied Materials & Interfaces · 年份:2021 · DOI:10.1021/acsami.1c05722 · 被引用次数:71 · 研究领域:Catalytic Processes in Materials Science、Catalysts for Methane Reforming、CO2 Reduction Techniques and Catalysts

The size effects of metal catalysts have been widely investigated to optimize their catalytic activity and selectivity. However, the size-controllable synthesis of uniform supported metal nanoparticles without surfactants and/or additives remains a great challenge. Herein, we developed a green, surfactant-free, and universal strategy to tailor the sizes of uniform Pd nanoparticles on metal oxides by an electroless chemical deposition method via defect engineering of supports. The nucleation and growth mechanism suggest a strong electrostatic interaction between the Pd precursor and low-defective CeO 2 and a weak reducing capacity for low-defective CeO 2, resulting in small Pd nanoparticles. Conversely, large Pd nanoparticles were formed on a highly defective CeO 2 surface. Combined with various ex situ and in situ characterizations, a higher intrinsic activity of Pd for the CO 2 -to-CO hydrogenation was found on large Pd nanoparticles with higher electron density owing to their stronger H 2 dissociation ability and H-spillover effects, as well as the larger number of oxygen vacancies generated in situ for CO 2 activation under hydrogenation conditions.