Advanced proton exchange membrane prepared from N-heterocyclic poly(aryl ether ketone)s with pendant benzenesulfonic moieties and performing enhanced radical tolerance and fuel cell properties
Qian Liu, Shouhai Zhang, Lin Zhuo, Zhaoqi Wang, Chenghao Wang, Fenchen Sun, Kang Niu, Feiqi Xu, Xuefu Che, Jie Zhang, Xigao Jian
{"title":"Advanced proton exchange membrane prepared from N-heterocyclic poly(aryl ether ketone)s with pendant benzenesulfonic moieties and performing enhanced radical tolerance and fuel cell properties","authors":"Qian Liu, Shouhai Zhang, Lin Zhuo, Zhaoqi Wang, Chenghao Wang, Fenchen Sun, Kang Niu, Feiqi Xu, Xuefu Che, Jie Zhang, Xigao Jian","doi":"10.1016/j.memsci.2023.121767","DOIUrl":null,"url":null,"abstract":"<div><p><span>The application of sulfonated poly(aryl ether)s proton exchange membranes in fuel cells is hampered by the inadequate oxidation<span> stability and the trade-off effect between proton-conducting performance and physicochemical stability. So the sulfonated N-heterocyclic poly(aryl ether ketone)s (SPBPEK-Ps) membranes possessing fine proton-conducting behavior and radical tolerance are manufactured by the elaborate design of molecular backbones. The hydrophilic units containing proton-conducting groups in pendant moieties in SPBPEK-Ps contribute to constructing developed proton-conducting channels, in which the multiple interactions between sulfonic groups and N-heterocycles further promote proton conduction with the conductivity of up to 125 mS cm</span></span><sup>−1</sup>. The fuel cells loading SPBPEK-Ps membranes perform a power density of up to 1210 mW cm<sup>−2</sup> with hypo-sensitivity to temperature and oxidized gas. A couple of steric hindrances from pendant proton-conducting groups and the diminished affinity of radicals for molecular chains resulting from the introduction of N-heterocyclic structure enhance the oxidation stability of SPBPEK-Ps membranes, and the break time of the membranes at 80 °C ranges in 2.5–7.8 h. The combination of the pendant proton-conducting groups and N-heterocycles with the electron-withdrawing effect would contribute to improving proton-conducting performance and oxidation stability and attenuating the trade-off effect between them.</p></div>","PeriodicalId":368,"journal":{"name":"Journal of Membrane Science","volume":"681 ","pages":"Article 121767"},"PeriodicalIF":8.4000,"publicationDate":"2023-09-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Journal of Membrane Science","FirstCategoryId":"5","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S0376738823004234","RegionNum":1,"RegionCategory":"工程技术","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"ENGINEERING, CHEMICAL","Score":null,"Total":0}
引用次数: 0
Abstract
The application of sulfonated poly(aryl ether)s proton exchange membranes in fuel cells is hampered by the inadequate oxidation stability and the trade-off effect between proton-conducting performance and physicochemical stability. So the sulfonated N-heterocyclic poly(aryl ether ketone)s (SPBPEK-Ps) membranes possessing fine proton-conducting behavior and radical tolerance are manufactured by the elaborate design of molecular backbones. The hydrophilic units containing proton-conducting groups in pendant moieties in SPBPEK-Ps contribute to constructing developed proton-conducting channels, in which the multiple interactions between sulfonic groups and N-heterocycles further promote proton conduction with the conductivity of up to 125 mS cm−1. The fuel cells loading SPBPEK-Ps membranes perform a power density of up to 1210 mW cm−2 with hypo-sensitivity to temperature and oxidized gas. A couple of steric hindrances from pendant proton-conducting groups and the diminished affinity of radicals for molecular chains resulting from the introduction of N-heterocyclic structure enhance the oxidation stability of SPBPEK-Ps membranes, and the break time of the membranes at 80 °C ranges in 2.5–7.8 h. The combination of the pendant proton-conducting groups and N-heterocycles with the electron-withdrawing effect would contribute to improving proton-conducting performance and oxidation stability and attenuating the trade-off effect between them.
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.