Anion exchange membranes with a semi-interpenetrating polymer network using 1,6-dibromohexane as bifunctional crosslinker

双功能 离子交换 聚合物 高分子化学 离子交换膜 离子 化学工程 高分子科学 材料科学 化学 有机化学 复合材料 工程类 催化作用 生物化学
作者
Aijie Li,Zhanliang Wang,Zhihao Si,Lu Lu,Peipei Huang,Jinhong Liu,Songyuan Yao,Peiyong Qin,Xinmiao Zhang
出处
期刊:Chinese Journal of Chemical Engineering [Elsevier]
卷期号:72: 199-208 被引量:4
标识
DOI:10.1016/j.cjche.2024.04.026
摘要

Anion exchange membrane (AEM) is generally expected to possess high ion exchange capacity (IEC), low water uptake (WU) and high mechanical strength when applied to electrodialysis desalination. Among different types of AEMs, semi-interpenetrating polymer networks (SIPNs) have been suggested their structural superiorities, i.e. the tunable local density of ion exchange groups for IEC and the restrained leaching of hygroscopic groups by insolubility for WU. Unfortunately, the conventional SIPN AEMs still struggle to balances IEC, WU and mechanical strength simultaneously, due to the lack of the compact crosslinking region. In this work, we proposed a novel SIPN structure of polyvinylidene difluoride/1-vinylimidazole/1,6-dibromohexane (PVDF/PVIm/DBH). On the one hand, DBH with two cationic groups of imidazole groups are introduced to enhance the ion conductivity, which is different from the conventional monofunctional modifier with only one cationic group. On the other hand, DBH has the ability to bridge with VIm, where the mechanical strength of the resulting AEM is increased by the increase of crosslinking degree. Results show that a low water uptake of 38.1%–62.6%, high ion exchange capacity of 2.12–2.22 mmol·g–1 and excellent tensile strength of 3.54–12.35 MPa for PVDF/PVIm/DBH membrane are achieved. This work opens a new avenue for achieving the high-quality AEMs.
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