电化学(中英文) ›› 2020, Vol. 26 ›› Issue (1): 103-120. doi: 10.13208/j.electrochem.181217
刘旭坡1,2, 张运丰1,*(), 邓邵峰2, 王得丽2,*(), 程寒松1
收稿日期:
2018-12-17
修回日期:
2019-02-16
出版日期:
2020-02-28
发布日期:
2019-02-19
通讯作者:
张运丰,王得丽
E-mail:zhangyf329@gmail.com;wangdl81125@hust.edu.cn
基金资助:
Xu-po LIU1,2, Yun-feng ZHANG1,*(), Shao-feng DENG2, De-li WANG2,*(), Han-song CHENG1
Received:
2018-12-17
Revised:
2019-02-16
Published:
2020-02-28
Online:
2019-02-19
Contact:
Yun-feng ZHANG, De-li WANG
E-mail:zhangyf329@gmail.com;wangdl81125@hust.edu.cn
摘要:
质子交换膜(PEM)是质子交换膜燃料电池的核心组件之一,具有隔绝阴阳极、提供质子传递通道和阻止燃料渗透的作用. 商业化应用的全氟磺酸PEM存在燃料渗透严重、高温条件下导电性差和成本高的问题,开发性能优良的聚合物PEM显得很有必要. 本文讨论了近年来聚合物PEM的研究进展,分别从聚合物的主链、支链和交联结构角度介绍了分子结构对薄膜相分离、质子导电性、稳定性和电池性能等性能的影响,并讨论了聚合物分子结构设计方面存在的问题,最后对燃料电池用聚合物PEM在未来的发展方向进行了展望.
中图分类号:
刘旭坡, 张运丰, 邓邵峰, 王得丽, 程寒松. 燃料电池用聚合物质子交换膜的研究进展[J]. 电化学(中英文), 2020, 26(1): 103-120.
Xu-po LIU, Yun-feng ZHANG, Shao-feng DENG, De-li WANG, Han-song CHENG. Research Progresses in Polymeric Proton Exchange Membranes for Fuel Cells[J]. Journal of Electrochemistry, 2020, 26(1): 103-120.
表1
含亲水支链PEMs的IEC值和质子导电性对比
Membrane | Structure | IEC/(mmol·g-1) | Proton conductivity/ (mS·cm-1) | Test condition | Reference |
---|---|---|---|---|---|
PSOA-SPEA-80 | 1.61 | 99.4 | 80 oC, 100% RH | [75] | |
SC-SPAE80 | 1.50 | 34 | 80 oC, 100% RH | [76] | |
LSPA-0.67 | 0.67 | 67 | 80 oC, 100% RH | [77] | |
comb-shaped copolymers 3 | 1.75 | About 580 | 80 oC, in water | [78] | |
l-tSPP-co-PAEK1.50 | 1.47 | 60 | 30 oC, 100% RH | [79] | |
6F-PAEK-SP22 | 1.77 | 136 | 80 oC, in water | [80] | |
S-PES-55 | 2.95 | 209 | 80 oC, 95% RH | [73] | |
Nafion 212 | — | 0.90 | 136 | 80 oC, 95% RH | [73] |
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