Hydration and diffusion of h+, li+, na+, cs+ ions in cation-exchange membranes based on polyethylene-and sulfonated-grafted polystyrene studied by nmr technique and ionic conductivity measurements

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Abstract

The main particularities of sulfonate groups hydration, water molecule, and alkaline metal cation translation mobility were revealed by nuclear magnetic resonance (NMR) and ionic conductivity measurements techniques in cation-exchange membranes MSC based on cross-linked sulfonated polystyrene (PS) grafted on polyethylene with ion-exchange capacity of 2.5 mg-eq/g. Alkaline metal cation hydration numbers (h) calculated from temperature dependences of1H chemical shift of water molecule for membranes equilibrated with water vapor at RH = 95% are 5, 6, and 4 for Li+, Na+, and Cs+ ions, respectively. These values are close to h for equimolar aqueous salt solutions. Water molecules and counter ions Li+, Na+, and Cs+ diffusion coefficients were measured by pulsed field gradient NMR on the1H,7Li,23Na, and133Cs nuclei. For membranes as well as for aqueous chloride solutions, cation diffusion coefficients increased in the following sequence: Li+ < Na+ < Na+ < Cs+ << H+. The conductivity values calculated from the NMR diffusion coefficients with the use of the Nernst–Einstein equation are essentially higher than experimentally determined coefficients. The reason for this discrepancy is the heterogeneity of membrane pore and channel system. Ionic conductivity is limited by cation transfer in narrow channels, whereas the diffusion coefficient characterizes ion mobility in wide pores first of all.

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Volkov, V. I., Chernyak, A. V., Golubenko, D. V., Tverskoy, V. A., Lochin, G. A., Odjigaeva, E. S., & Yaroslavtsev, A. B. (2020). Hydration and diffusion of h+, li+, na+, cs+ ions in cation-exchange membranes based on polyethylene-and sulfonated-grafted polystyrene studied by nmr technique and ionic conductivity measurements. Membranes, 10(10), 1–14. https://doi.org/10.3390/membranes10100272

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