First-Principles Study of Stability and N<sub>2</sub> Activation on the Octahedron RuRh Clusters

The geometric and electronic structures of different octahedron RuRh clusters are studied using density functional theory calculations. The binding energy, electronic structure, and energy gap of the clusters have been obtained to determine the possible stable structures. The results show that the R...

Full description

Bibliographic Details
Main Authors: Nan Zhang, Lixia Ma, Luo Huang, Houyu Zhu, Ruibin Jiang
Format: Article
Language:English
Published: MDPI AG 2022-08-01
Series:Catalysts
Subjects:
Online Access:https://www.mdpi.com/2073-4344/12/8/881
Description
Summary:The geometric and electronic structures of different octahedron RuRh clusters are studied using density functional theory calculations. The binding energy, electronic structure, and energy gap of the clusters have been obtained to determine the possible stable structures. The results show that the Ru<sub>4</sub>Rh<sub>2</sub> cluster is the most stable structure which has D<sub>4h</sub> symmetry with the largest ionization potential, smallest affinity energy and larger energy gap. Furthermore, the information on adsorption and dissociation of multiple nitrogen molecules and the density of state for the octahedral Ru<sub>4</sub>Rh<sub>2</sub> cluster is analyzed. The dissociation barrier of three nitrogen molecules further decreases to 1.18 eV with an increase in the number of N<sub>2</sub> molecules. The co-adsorption of multiple N<sub>2</sub> molecules facilitates the dissociation of N<sub>2</sub> on the Ru<sub>4</sub>Rh<sub>2</sub> cluster. The strong interaction between the antibonding orbital of N<sub>2</sub> and the <i>d</i> orbital of the Ru<sub>4</sub>Rh<sub>2</sub> cluster is illustrated by calculating and analyzing the results of PDOS, which stretches the N−N bond length and reduces the activation energy to dissociation. The antibonding orbital of the nitrogen molecule shows distinct and unique catalytic activity for the dissociation of the adsorbed nitrogen molecule on the octahedral Ru<sub>4</sub>Rh<sub>2</sub> cluster.
ISSN:2073-4344