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Updated: May 20, 2025

Ligand-Mediated Nucleation and Growth of Palladium Metal Nanoparticles
Published on: June 25, 2018
Unraveling the Cause of Strong Metal-Support Interaction Formation: Disparities in Metal Nanoparticle Anchoring
Yuxuan Xie1,2, Xiongyi Liang3,4,5, Zhao Li1
1Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, No.727 South Jingming Road, Kunming, 650500, China.
Abstract:
Strong metal-support interaction (SMSI) can be normally induced by the surface free energy differences between metal nanoparticles and supports. To gain deeper insights into the effect of SMSI on heterogeneous catalysis, we use prototype Pt, Pd/TiO2(anatase) systems to demonstrate different reverse water gas shift (RWGS) reaction activity changes, especially with increasing the metal nanoparticle (NP) loading. Our experiments show that the conventional surface-free-energy change law regarding the incremental NP size is no longer applicable to these systems due to the overlook of the change of support properties owing to the disparities of the metal anchoring mechanisms. Both experimental measurements and density functional theory (DFT) calculations show that Pt atoms strongly favor anchoring on the oxygen vacancies (Ov) over the OH-sites on the anatase TiO2 support. In contrast, Pd atoms lack such Ov-site preference compared to Pt atoms, thereby leaving higher content of Ov on the support than the Pt counterpart. Moreover, high density of residual Ov on the support can cause the Pd NPs to be in higher degree of contact with the support, either in NP-encapsulation state (experiment) or NP-spreading state (simulation). The enhanced CO2 conversion of Pt/TiO2A is attributed to the synergistic effect of Ov and hydrogen spillover from Pt sites.
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