阴离子交换膜水电解槽用交联聚季苯基哌啶低温快速制备

IF 4.9 Q1 ENGINEERING, CHEMICAL
Du Ru Kang , Gi Hyo Sim , Minjoong Kim , Jae Hun Lee , Jong Hak Kim
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引用次数: 0

摘要

虽然非溶剂诱导相分离(NIPS)被广泛认为是制造多孔聚合物膜的既定方法,但本研究独特地采用非溶剂来生产致密的非多孔膜。具体来说,该膜是在低温下快速制备的,使用二甲基亚砜(DMSO),一种高沸点溶剂,水作为非溶剂。我们成功地制备了一系列交联度高(达47.2%)的聚季苯基哌啶(PQP-BM)网络膜。通过将疏水扩展多芳骨架与亲水性哌啶交联剂结合,我们实现了明显的微相分离,与线性非交联膜相比,增强了离子传输、尺寸稳定性以及热力学性能。优化后的AEM具有优异的机械强度(抗拉强度>;63 MPa),高离子电导率(80°C时151.5 mS cm⁻¹)和良好的碱性耐久性。在单细胞水电解槽测试中,PQP-BM膜在2.0 V, 1 M KOH, 50°C下表现出3.99 a cm⁻²的电流密度,比商用的fa -3 - 50膜高出126%。这项研究强调了节能的NIFF工艺作为一种可扩展的方法来生产用于能量转换应用的先进AEMs的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Low-temperature rapid fabrication of crosslinked poly(quaterphenyl piperidine) membrane for anion exchange membrane water electrolyzers

Low-temperature rapid fabrication of crosslinked poly(quaterphenyl piperidine) membrane for anion exchange membrane water electrolyzers
While nonsolvent-induced phase separation (NIPS) is widely recognized as an established method for creating porous polymer membranes, this study uniquely employs a nonsolvent to produce a dense, nonporous membrane instead. Specifically, the membranes were rapidly fabricated at low temperatures using dimethyl sulfoxide (DMSO), a high-boiling-point solvent, and water as the nonsolvent. We successfully prepared a series of crosslinked poly(quaterphenyl piperidine) (PQP-BM) network membranes with high crosslinking degrees (up to 47.2 %). By combining a hydrophobic extended polyaromatic backbone with a hydrophilic piperidine-based crosslinker, we achieved distinct microphase separation, which enhanced ion transport, dimensional stability, and thermal and mechanical properties compared to the linear uncrosslinked membranes. The optimized AEM exhibited exceptional mechanical strength (tensile strength >63 MPa), high ion conductivity (151.5 mS cm⁻¹ at 80 °C), and excellent alkaline durability. In single-cell water electrolyzer tests, the PQP-BM membrane demonstrated a remarkable current density of 3.99 A cm⁻² at 2.0 V in 1 M KOH at 50 °C, outperforming the commercial FAA-3–50 membrane by 126 %. This study highlights the potential of the energy-efficient NIFF process as a scalable method for producing advanced AEMs for energy conversion applications.
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