Highly conductive and chemically stable alkaline anion exchange membranes via ROMP of <i>trans</i>-cyclooctene derivatives.
basic_science · Level V
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- Record sourced from PubMed, PMID 31036652.
- Also identified by DOI 10.1073/pnas.1900988116 and PMC identifier 6525526.
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Abstract
Alkaline anion exchange membranes (AAEMs) are an important component of alkaline exchange membrane fuel cells (AEMFCs), which facilitate the efficient conversion of fuels to electricity using nonplatinum electrode catalysts. However, low hydroxide conductivity and poor long-term alkaline stability of AAEMs are the major limitations for the widespread application of AEMFCs. In this paper, we report the synthesis of highly conductive and chemically stable AAEMs from the living polymerization of <i>trans</i>-cyclooctenes. A <i>trans</i>-cyclooctene-fused imidazolium monomer was designed and synthesized on gram scale. Using these highly ring-strained monomers, we produced a range of block and random copolymers. Surprisingly, AAEMs made from the random copolymer exhibited much higher conductivities than their block copolymer analogs. Investigation by transmission electron microscopy showed that the block copolymers had a disordered microphase segregation which likely impeded ion conduction. A cross-linked random copolymer demonstrated a high level of hydroxide conductivity (134 mS/cm at 80 °C). More importantly, the membranes exhibited excellent chemical stability due to the incorporation of highly alkaline-stable multisubstituted imidazolium cations. No chemical degradation was detected by <sup>1</sup>H NMR spectroscopy when the polymers were treated with 2 M KOH in CD<sub>3</sub>OH at 80 °C for 30 d.