scholarly journals A Molecular Dynamic Simulation of Hydrated Proton Transfer in Perfluorosulfonate Ionomer Membranes (Nafion 117)

2015 ◽  
Vol 2015 ◽  
pp. 1-10 ◽  
Author(s):  
Hong Sun ◽  
Mingfu Yu ◽  
Zhijie Li ◽  
Saif Almheiri

A molecular dynamic model based on Lennard-Jones Potential, the interaction force between two particles, molecular diffusion, and radial distribution function (RDF) is presented. The diffusion of the hydrated ion, triggered by both Grotthuss and vehicle mechanisms, is used to study the proton transfer in Nafion 117. The hydrated ion transfer mechanisms and the effects of the temperature, the water content in the membrane, and the electric field on the diffusion of the hydrated ion are analyzed. The molecular dynamic simulation results are in good agreement with those reported in the literature. The modeling results show that when the water content in Nafion 117 is low, H3O+is the main transfer ion among the different hydrated ions. However, at higher water content, the hydrated ion in the form of H+(H2O)2is the main transfer ion. It is also found that the negatively charged sulfonic acid group as the fortified point facilitates the proton transfer in Nafion 117 better than the free water molecule. The diffusion of the hydrated ion can be improved by increasing the cell temperature, the water content in Nafion, and the electric field intensity.

2013 ◽  
Vol 823 ◽  
pp. 657-660
Author(s):  
Xiao Na Liu ◽  
Qing Yin Zhang

In this article, we use the molecular dynamic simulation to study the structure and transmission properties of polar fluid which is in the limited nature of nanochannel under the applied electric field. polar fluid is water. Simulation process is carried out under different electric field strength. The diffusion coefficient, density distribution, radial distribution function of water molecular in the same channel with different electric field strength and the same electric field strength of different pore are studied by the method of molecular dynamic simulation, obtained a conclusion that in a certain range of electric field intensity, the density of water distribution diffusion coefficient of the main conclusions of effects by the wall, but over a certain range, the electric field of influence will become obvious.


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