Hyperbranched-type anion exchange membranes with electrostatic interactions for high performance anion exchange membrane water electrolysis

离子交换膜 离子交换 电解 离子 化学 化学工程 无机化学 高分子化学 电极 电解质 有机化学 物理化学 生物化学 工程类
作者
Soomin Jeon,Hyun Woo Kang,Kyungwhan Min,W. Lee,Hyeonjun Maeng,Chi Hoon Park,Tae‐Hyun Kim
出处
期刊:Journal of Membrane Science [Elsevier BV]
卷期号:726: 124050-124050 被引量:26
标识
DOI:10.1016/j.memsci.2025.124050
摘要

Poly (aryl piperidinium) (PAP) has been widely employed in anion exchange membrane water electrolysis (AEMWE) because of its high ion exchange capacity and superior chemical stability. PAP-based anion exchange membranes (AEMs) equipped with hyperbranched structures have recently garnered significant attention as they contain multiple reactive sites, thus exhibiting high molecular weights and enhanced mechanical properties. Herein, hyperbranched poly ( p -terphenyl N -methyl piperidinium) (QPTP) polymers using triphenylamine (b-Nm-QPTP) and triphenylmethane (b-Cm-QPTP) as hyperbranching units were fabricated and compared, notably with respect to the hyperbranching units. A linear QPTP polymer with no hyperbranched structures was also synthesized and used to fabricate a QPTP-based AEM for comparison. Both b-Nm-QPTP and b-Cm-QPTP achieved a higher viscosity (>1.4 dL/g) than the linear QPTP, and the b-Nm-QPTP- and b-Cm-QPTP-based AEMs exhibited enhanced mechanical properties (>30 MPa in terms of stress) compared to the QPTP-based AEM. Further, b-N5-QPTP, comprising 5 % triphenylamine, demonstrated the most pronounced microphase separation ; this was attributed to nitrogen–water electrostatic interactions , as confirmed by molecular dynamics simulations . Thus, this membrane exhibited not only well-defined ion channels and improved ionic conductivity (157.68 mS/cm at 80 °C) but also remarkable chemical stability, with an ionic conductivity retention of over 96 % in 3 M KOH at 60 °C. Additionally, the AEMWE single-cell performance of b-N5-QPTP, 6.313 A/cm 2 at 2.0 V, was significantly higher than that of the commercial PiperION membrane (4.806 A/cm 2 at 2.0 V) and remained high (4.438 A/cm 2 at 2.0 V) even when non-noble metal catalysts were used, demonstrating its high feasibility for AEMWE applications. • Hyperbranched poly ( p -terphenyl N -methyl piperidinium) membranes were prepared. • The effect of the hyperbranching units was investigated. • Triphenylamine enhanced the morphology due to nitrogen–water hydrogen bonding. • Enhanced microphase separation improved ion conductivity and cell performance.
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