In this work, crosslinked hydrocarbon-based cation exchange membranes have been developed for vanadium redox flow battery applications. By Friedel-Crafts alkylation of sulfonated poly(phenylene sulfide sulfone) (sPSS), membranes with various degrees of crosslinking have been prepared in one step. Among those, the membrane containing 9% of crosslinker (sPSScl9) represents the best solution. Owing to a much higher selectivity, battery self-discharge and capacity fading (tested over 100 charge/discharge cycles at 120 mA cm−2) of sPSScl9 outperform benchmark Nafion of comparable thickness (N212). Furthermore, the crosslinking strategy permits to obtain stable membranes even in highly oxidizing environments, due to a combination of crosslinking, that holds together the polymer chains, and oxidation of sulfides to sulfones that increases the rigidity of the backbone. As a result, sPSScl9 incubated in the presence of V(V) shows unchanged ion exchange capacity and proton conductivity, and a 10× reduction of vanadium permeability with respect to untreated membranes.

Gigli, M., Mecheri, B., Licoccia, S., D'Epifanio, A. (2021). Crosslinked sulfonated poly(phenylene sulfide sulfone) membranes for vanadium redox flow batteries. SUSTAINABLE MATERIALS AND TECHNOLOGIES, 28 [10.1016/j.susmat.2021.e00249].

Crosslinked sulfonated poly(phenylene sulfide sulfone) membranes for vanadium redox flow batteries

Mecheri B.;Licoccia S.;D'Epifanio A.
2021-01-01

Abstract

In this work, crosslinked hydrocarbon-based cation exchange membranes have been developed for vanadium redox flow battery applications. By Friedel-Crafts alkylation of sulfonated poly(phenylene sulfide sulfone) (sPSS), membranes with various degrees of crosslinking have been prepared in one step. Among those, the membrane containing 9% of crosslinker (sPSScl9) represents the best solution. Owing to a much higher selectivity, battery self-discharge and capacity fading (tested over 100 charge/discharge cycles at 120 mA cm−2) of sPSScl9 outperform benchmark Nafion of comparable thickness (N212). Furthermore, the crosslinking strategy permits to obtain stable membranes even in highly oxidizing environments, due to a combination of crosslinking, that holds together the polymer chains, and oxidation of sulfides to sulfones that increases the rigidity of the backbone. As a result, sPSScl9 incubated in the presence of V(V) shows unchanged ion exchange capacity and proton conductivity, and a 10× reduction of vanadium permeability with respect to untreated membranes.
2021
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/07 - FONDAMENTI CHIMICI DELLE TECNOLOGIE
English
cation exchange membranes; Vanadium permeability; Vanadium redox flow batteries
Gigli, M., Mecheri, B., Licoccia, S., D'Epifanio, A. (2021). Crosslinked sulfonated poly(phenylene sulfide sulfone) membranes for vanadium redox flow batteries. SUSTAINABLE MATERIALS AND TECHNOLOGIES, 28 [10.1016/j.susmat.2021.e00249].
Gigli, M; Mecheri, B; Licoccia, S; D'Epifanio, A
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/267530
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