A soluble highly-sulfonated polybenzimidazole with high molecular weight as membrane for vanadium flow battery with enhanced performance and long-term stability

IF 8.4 1区 工程技术 Q1 ENGINEERING, CHEMICAL Journal of Membrane Science Pub Date : 2024-07-20 DOI:10.1016/j.memsci.2024.123114
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Abstract

A series of novel sulfonated polybenzimidazole (SPBI) membranes containing flexible double ether segments, having high ion exchange capacity (IEC), good solubility as well as high molecular weight, are designed for vanadium flow batteries (VFBs). The bis-ether structure of self-synthesized sulfonic acid monomer, 4,4'-((2-sulfo-1,4-phenylene)bis(oxy))dibenzoic acid, improves the solubility of produced SPBI and the microphase separation structure of prepared membrane by disrupting the regularity of the backbone through a non-planar structure and attenuating the interchain stacking effect of the polymer backbone. Such a highly reactive bis-ether monomer also leads to high molecular weights (2.37−2.82 dL g−1). The copolymerization using another sulfonic acid monomer, Monosodium-5-Sulfoisophthalate monomer, leads to a high IEC of up to 2.08 mmol g−1. As a result, the SPBI membrane shows a low area resistance of 0.21 Ω cm2 and a low vanadium ion permeability of 3.36 × 10−9 cm2 s−1. The VFB cell employing SPBI membrane achieves a very high energy efficiency exceeding 82 % at 200 mA cm−2. In addition, an ultra-long lifetime of over 3400 cycles is accomplished.

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高分子量可溶性高磺化聚苯并咪唑作为钒液流电池膜,可提高性能和长期稳定性
为钒液流电池(VFB)设计了一系列新型磺化聚苯并咪唑(SPBI)膜,这些膜含有柔性双醚段,具有高离子交换容量(IEC)、良好的溶解性和高分子量。自合成磺酸单体 4,4'-((2-磺基-1,4-亚苯基)双(氧))二苯甲酸的双醚结构通过非平面结构破坏了骨架的规整性,削弱了聚合物骨架的链间堆叠效应,从而提高了生产的 SPBI 的溶解度和制备的膜的微相分离结构。这种高活性双醚单体还能产生高分子量(2.37-2.82 dL g-1)。使用另一种磺酸单体--5-磺基间苯二甲酸单钠盐单体--进行共聚,可产生高达 2.08 mmol g-1 的高 IEC。因此,SPBI 膜具有 0.21 Ω cm2 的低面积电阻和 3.36 × 10-9 cm2 s-1 的低钒离子渗透率。采用 SPBI 膜的 VFB 电池在 200 mA cm-2 电流条件下实现了超过 82% 的极高能效。此外,它还实现了超过 3400 次循环的超长寿命。
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来源期刊
Journal of Membrane Science
Journal of Membrane Science 工程技术-高分子科学
CiteScore
17.10
自引率
17.90%
发文量
1031
审稿时长
2.5 months
期刊介绍: The Journal of Membrane Science is a publication that focuses on membrane systems and is aimed at academic and industrial chemists, chemical engineers, materials scientists, and membranologists. It publishes original research and reviews on various aspects of membrane transport, membrane formation/structure, fouling, module/process design, and processes/applications. The journal primarily focuses on the structure, function, and performance of non-biological membranes but also includes papers that relate to biological membranes. The Journal of Membrane Science publishes Full Text Papers, State-of-the-Art Reviews, Letters to the Editor, and Perspectives.
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