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用于聚合物电解质膜的具有精确控制离子交换容量的磺化聚亚苯基类离聚物的合成与研究。

Synthesis and investigation of sulfonated poly(-phenylene)-based ionomers with precisely controlled ion exchange capacity for use as polymer electrolyte membranes.

作者信息

Yoshida-Hirahara Miru, Takahashi Satoshi, Yoshizawa-Fujita Masahiro, Takeoka Yuko, Rikukawa Masahiro

机构信息

Department of Materials and Life Sciences, Sophia University 7-1 Kioi-cho Chiyoda-ku Tokyo 102-8554 Japan

Research and Development Bureau, Saitama University Shimo-Okubo 255 Sakura-ku Saitama-shi 338-8570 Japan.

出版信息

RSC Adv. 2020 Mar 31;10(22):12810-12822. doi: 10.1039/d0ra01816c. eCollection 2020 Mar 30.

DOI:10.1039/d0ra01816c
PMID:35492080
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9051222/
Abstract

To achieve precise control of sulfonated polymer structures, a series of poly(-phenylene)-based ionomers with well-controlled ion exchange capacities (IECs) were synthesised a three-step technique: (1) preceding sulfonation of the monomer with a protecting group, (2) nickel(0) catalysed coupling polymerisation, and (3) cleavage of the protecting group of the polymers. 2,2-Dimethylpropyl-4-[4-(2,5-dichlorobenzoyl)phenoxy]benzenesulfonate (NS-DPBP) was synthesised as the preceding sulfonated monomer by treatment with chlorosulfuric acid and neopentyl alcohol. NS-DPBP was readily soluble in various organic solvents and stable during the nickel(0) catalysed coupling reaction. Sulfonated poly(4-phenoxybenzoyl-1,4-phenylene) (S-PPBP) homopolymer and seven types of random copolymers (S-PPBP--PPBP) with different IECs were obtained by varying the stoichiometry of NS-DPBP. The IECs and weight average molecular weights ( s) of ionomers were in the range of 0.41-2.84 meq. g and 143 000-465 000 g mol, respectively. The water uptake, proton conductivities, and water diffusion properties of ionomers exhibited a strong IEC dependence. Upon increasing the IEC of S-PPBP--PPBPs from 0.86 to 2.40 meq. g, the conductivities increased from 6.9 × 10 S cm to 1.8 × 10 S cm at 90% RH. S-PPBP and S-PPBP--PPBP (4 : 1) with IEC values >2.40 meq. g exhibited fast water diffusion (1.6 × 10 to 8.0 × 10 m s), and were comparable to commercial perfluorosulfuric acid polymers. When fully hydrated, the maximum power density and the limiting current density of membrane electrode assemblies (MEAs) prepared with S-PPBP--PPBP (4 : 1) were 712 mW cm and 1840 mA cm, respectively.

摘要

为了实现对磺化聚合物结构的精确控制,采用三步法合成了一系列具有可控离子交换容量(IEC)的聚(亚苯基)基离聚物:(1)用保护基团对单体进行预磺化,(2)零价镍催化的偶联聚合反应,以及(3)聚合物保护基团的裂解。通过用氯磺酸和新戊醇处理合成了2,2-二甲基丙基-4-[4-(2,5-二氯苯甲酰基)苯氧基]苯磺酸盐(NS-DPBP)作为预磺化单体。NS-DPBP易溶于各种有机溶剂,并且在零价镍催化的偶联反应中稳定。通过改变NS-DPBP的化学计量比,获得了磺化聚(4-苯氧基苯甲酰基-1,4-亚苯基)(S-PPBP)均聚物和七种不同IEC的无规共聚物(S-PPBP--PPBP)。离聚物的IEC和重均分子量( )分别在0.41 - 2.84 meq. g和143 000 - 465 000 g mol范围内。离聚物的吸水率、质子电导率和水扩散性能表现出强烈的IEC依赖性。当S-PPBP--PPBPs的IEC从0.86增加到2.40 meq. g时,在90%相对湿度下,电导率从6.9×10 S cm增加到1.8×10 S cm。IEC值>2.40 meq. g的S-PPBP和S-PPBP--PPBP(4∶1)表现出快速的水扩散(1.6×10至8.0×10 m s),并且与市售全氟磺酸聚合物相当。完全水合时,用S-PPBP--PPBP(4∶1)制备的膜电极组件(MEA)的最大功率密度和极限电流密度分别为712 mW cm和1840 mA cm。

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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6a56/9051222/4637957d39d1/d0ra01816c-s1.jpg
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