Fuel Cells and Related MaterialsSynthesis and properties of polymersCovalent Organic Framework Applications

Kentaro Aoki, Yunhe Tian, Mitsuo Hara, Shusaku Nagano, N. Zettsu, Y. Nagao

2026.2.1SUPRAMOLECULAR CHEMISTRY

DOI: 10.1080/10610278.2026.2645813

Abstract

ABSTRACT In this study, we synthesised a novel alkyl sulphonated polyimide (ASPI) using an aliphatic dianhydride monomer containing cyclobutane moiety (ASPI-7-H), and investigated influence of backbone conformation of aliphatic ASPIs on proton conductivity and supramolecular channel formation. Molecular simulations revealed that ASPI-7-H adopted distorted backbone geometry, distinct from reported rigid or bent aliphatic ASPIs. Polymer backbone in ASPI-7-H thin film was aligned parallel to the substrate. Moreover, ASPI-7-H thin film formed an anisotropic supramolecular lamellar structure upon humidification, resulting in high proton conductivity of 9.0 × 10−2 S cm−1 at 298 K and 95% relative humidity. Compared with other aliphatic ASPIs, higher water uptake was required to induce lamellar structure formation, reflecting distorted backbone. Obtained results demonstrate that while lyotropic liquid-crystalline behaviour is governed by multiple factors, including backbone rigidity, hydration, and degree of supramolecular organisation, backbone rigidity plays a key role in modulating hydration threshold and continuity of transport pathways. GRAPHICAL ABSTRACT

Citation format

AOKI, Kentaro, et al. Influence of backbone structure on proton conductivity and supramolecular channel in aliphatic sulphonated polyimides. SUPRAMOLECULAR CHEMISTRY, 2026, 37(1-2): 64–75.