December 6, 2018
Journal Article

Nucleation of Cun (n = 1-5) Clusters and Equilibrium Morphology of Cu Particles Supported on CeO2 Surface: A Density Functional Theory Study

Abstract

In the present work, the interactions between Cun (n=1~4) clusters and three low-index structural CeO2 (111, 110, 100) surfaces were investigated using density functional theory calculations. The atomic Cu prefers to aggregate into large clusters on the CeO2(111) surface while it is unfavorable on both CeO2(110) and CeO2(100) surfaces. Once the planar Cu4-p cluster is formed, it would convert into the 3D tetrahedral Cu4-t cluster on CeO2(110) and CeO2(111) surfaces, i.e., 2D to 3D transition growth is thermodynamically favorable and kinetically feasible on CeO2(110) and CeO2(111) surfaces. The effects of ceria support structure on the morphology of the large Cu nanoparticle was examined using calculated adhesion and interfacial energies of periodic Cu(khl)/CeO2 model systems. The calculated macroscopic contact angles (? > 100?) of various model systems suggest that the supported Cu nanoparticle is in bad wetting condition. Finally, the morphologies of large Cu nanoparticles on different CeO2 surfaces were predicted using Wulff-Kaichew construction principle.

Revised: February 26, 2019 | Published: December 6, 2018

Citation

Ren Z., N. Liu, B. Chen, J. Li, and D. Mei. 2018. Nucleation of Cun (n = 1-5) Clusters and Equilibrium Morphology of Cu Particles Supported on CeO2 Surface: A Density Functional Theory Study. Journal of Physical Chemistry C 122, no. 48:27402–27411. PNNL-SA-137468. doi:10.1021/acs.jpcc.8b07993