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Updated: Feb 10, 2026

Synthesis and Functionalization of 3D Nano-graphene Materials: Graphene Aerogels and Graphene Macro Assemblies
Published on: November 5, 2015
Transformation of Diffusion and Local Structure of CH4, CO2, NO, and H2O Mixtures into Bilayers Graphene: A Molecular
Ruoting Xu1, Chundi Liao1, Wei Gao2
1Key Laboratory of Electrochemical Energy Storage and Energy Conversion of Hainan Province, College of Chemistry and Chemical Engineering, Hainan Normal University, Haikou 571158, China.
Abstract:
Graphene has emerged as a promising candidate for adsorption and separation applications due to its exceptional properties. In this study, the diffusion properties and local structure of the CO2-NO flue gas, CH4, and H2O mixtures in the free state and those confined within graphene layers were investigated via molecular dynamics simulation. Additionally, density functional theory calculation was performed to determine the adsorption energies of these four components at different adsorption sites on graphene. The results showed that the graphene structure significantly altered the diffusion coefficients of the four substances, with the order becoming CH4 > NO > CO2 ≫ H2O. By contrast, in the absence of graphene at low temperatures, the diffusion coefficient order was H2O > CO2 > NO > CH4. Simultaneously, the temperature and pressure exerted pronounced regulatory effects on CH4, CO2, and NO. Analysis of the relative diffusion coefficients of CH4 and NO revealed that the optimal conditions for the adsorption and separation of this mixture with bilayer graphene structures were 1-10 MPa and 275 K.
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