November 4, 2010
Journal Article

Atomistic Simulation of Water Percolation and Proton Hopping in Nafion Fuel Cell Membrane

Abstract

We have performed a detailed analysis of water clustering and percolation in hydrated Nafion configurations generated by classical molecular dynamics simulations. Our results show that at low hydration levels H2O molecules are isolated and a continuous hydrogen-bonded network forms as the hydration level is increased. Our quantitative analysis has established a hydration level (?) between 5 and 6 H2O/SO3- as the percolation threshold of Nafion. We have also examined the effect of such a network on proton transport by studying the structural diffusion of protons using the quantum hopping molecular dynamics method. The mean residence time of the proton on a water molecule decreases by two orders of magnitude when the ? value is increased from 5 to 15. The proton diffusion coefficient in Nafion at a ? value of 15 is about 1.1x10-5 cm2/s in agreement with experiment. The results provide quantitative atomic-level evidence of water network percolation in Nafion and its effect on proton conductivity.

Revised: June 7, 2011 | Published: November 4, 2010

Citation

Devanathan R., A. Venkatnathan, R.J. Rousseau, M. Dupuis, T. Frigato, W. Gu, and V.H. Helms. 2010. Atomistic Simulation of Water Percolation and Proton Hopping in Nafion Fuel Cell Membrane. Journal of Physical Chemistry B 114, no. 43:13681-13690. PNNL-SA-71730. doi:10.1021/jp103398b