Hyperbranched TEMPO-based polymers as catholytes for redox flow battery applications†

IF 3.9 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY RSC Advances Pub Date : 2024-10-18 DOI:10.1039/D4RA03925D
Koosha Ehtiati, Ilya Anufriev, Christian Friebe, Ivan A. Volodin, Christian Stolze, Simon Muench, Grit Festag, Ivo Nischang, Martin D. Hager and Ulrich S. Schubert
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Abstract

Application of redox-active polymers (RAPs) in redox flow batteries (RFBs) can potentially reduce the stack cost through substitution of costly ion-exchange membranes by cheap size-exclusion membranes. However, intermolecular interactions of polymer molecules, i.e., entanglements, particularly in concentrated solutions, result in relatively high electrolyte viscosities. Furthermore, the large size and limited mobility of polymers lead to slow diffusion and more sluggish heterogeneous electron transfer rates compared to quickly diffusing small molecules. Although a number of RAPs with varying electrolyte viscosities have been reported in the literature, the relation between the RAP structure and the hydrodynamic properties has not been thoroughly investigated. Herein, hyperbranched 2,2,6,6-tetramethylpiperidinyloxyl (TEMPO)-based polymers intended for application as low-viscosity catholytes for RFBs are presented and the influence of the structure and the molar mass distribution on the hydrodynamic properties is investigated. A new synthesis approach for TEMPO-based polymers is established based on step-growth polymerization of a TEMPO-containing monomer using an aza-Michael addition followed by a postpolymerization modification to improve solubility in aqueous solutions. The compact structure of hyperbranched polymers was demonstrated using size-exclusion chromatography (SEC) with viscometric detection and the optimum molar mass was found based on the results of viscometric and crossover investigations. The resulting RAP revealed a viscosity of around 21 mPas at a concentration corresponding to around 1 M TEMPO-containing units, according to the calculated mass of the repeating unit, showing potential for high capacity polymer-based catholytes for RFBs. Nevertheless, possible partial deactivation of TEMPO units lowered the active TEMPO concentration of the hyperbranched RAPs. A faster diffusion and higher charge transfer rate were observed for the hyperbranched polymer compared to the previously reported linear polymers. However, in RFB tests, a poor performance was observed, which is attributed to the side reactions of the oxidized TEMPO moieties. Finally, pathways for overcoming the main remaining challenges, i.e., high loss of material during dialysis as an indication of being prone to crossover, the partial deactivation of TEMPO moieties, and the subsequent side reactions under battery conditions, are suggested.

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用作氧化还原液流电池阴极溶质的超支化 TEMPO 基聚合物†。
在氧化还原液流电池(RFB)中应用氧化还原活性聚合物(RAP),可以用廉价的尺寸排阻膜代替昂贵的离子交换膜,从而降低堆栈成本。然而,聚合物分子间的相互作用(即缠结),尤其是在浓缩溶液中,会导致电解质粘度相对较高。此外,与快速扩散的小分子相比,聚合物体积大,流动性有限,因此扩散速度慢,异质电子转移率也更慢。虽然文献中已经报道了一些具有不同电解质粘度的 RAP,但 RAP 结构与流体动力学特性之间的关系尚未得到深入研究。本文介绍了拟用作 RFB 低粘度溶质的超支化 2,2,6,6-四甲基哌啶基(TEMPO)聚合物,并研究了结构和摩尔质量分布对流体力学特性的影响。在使用氮-迈克尔加成法对含 TEMPO 的单体进行阶跃生长聚合,然后进行后聚合改性以提高其在水溶液中的溶解度的基础上,建立了一种新的 TEMPO 基聚合物合成方法。利用带有粘度检测功能的尺寸排阻色谱法(SEC)证明了超支化聚合物的紧凑结构,并根据粘度和交叉研究的结果找到了最佳摩尔质量。根据计算得出的重复单元质量,在含有约 1 M TEMPO 单元的浓度下,得到的 RAP 粘度约为 21 mPas,显示了 RFB 的高容量聚合物型阴离子溶解剂的潜力。不过,TEMPO 单元可能部分失活,降低了超支化 RAP 的活性 TEMPO 浓度。与之前报道的线性聚合物相比,超支化聚合物的扩散速度更快,电荷传输速率更高。不过,在 RFB 测试中,观察到的性能较差,这归因于氧化 TEMPO 分子的副反应。最后,还提出了克服其余主要挑战的途径,即透析过程中材料的高损耗(表明容易发生交叉)、TEMPO 分子的部分失活以及随后在电池条件下发生的副反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
期刊最新文献
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