Zhiwei Wang , Botond Szilágyi , Houhou Huang , Fu-Quan Bai
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引用次数: 0
Abstract
This research intensively explored the impact of surface patterning on Cu2O (100) reactivity under real conditions. Modeling studies were conducted on CO2 adsorption and dissociation post-patterning treatments. Ab initio molecular dynamics (AIMD) simulations verified the stability of three increasingly deep, plausible groove structures. From the perspective of electronic structure, the shift of the d‐band center towards the Fermi level indicated that the groove configurations were beneficial to the adsorption of gas molecules, which was also verified by the adsorption energy calculation results. By analyzing the Partial Density of States (PDOS) and Bader charge, it was revealed that charge transfer occurred between CO2 and the groove surfaces, and CO2 was activated by the strong interaction with the patterned surface. The dissociation energy barrier calculated by CI-NEB method suggested that the dissociation ability of CO2 was inversely proportional to its adsorption capacity. Subsequently, by calculating the reaction rate constant and analyzing the competitive relationship between the Hydrogen Evolution Reaction (HER) and dissociation reactions, it was comprehensively determined that the G3 patterned configuration was more conducive to the occurrence of CO2 dissociation reactions. Our calculations clarified the differences in CO2 adsorption and dissociation among various configurations and demonstrated the crucial role played by unsaturated three-coordinated oxygen atoms in the process of CO2 adsorption and dissociation, which was contrary to the traditional view that the exposure of oxygen atoms was unfavorable for adsorption. This research is closely related to the current development and design of efficient catalysts for the capture and recovery of gaseous pollutants.
期刊介绍:
The Journal of CO2 Utilization offers a single, multi-disciplinary, scholarly platform for the exchange of novel research in the field of CO2 re-use for scientists and engineers in chemicals, fuels and materials.
The emphasis is on the dissemination of leading-edge research from basic science to the development of new processes, technologies and applications.
The Journal of CO2 Utilization publishes original peer-reviewed research papers, reviews, and short communications, including experimental and theoretical work, and analytical models and simulations.