Construction of proton transport channels and performance Modulation of phosphotungstic acid hybrid proton exchange membranes for direct methanol fuel cell

被引:4
作者
Zhang, Zhongli [1 ]
Zhang, Yuanjing [1 ]
Song, Yingxu [1 ]
Wu, Zhifei [1 ]
Yang, Zhonghang [1 ]
Pan, Jiaxin [1 ]
Chen, Jinyao [1 ]
Cao, Ya [1 ]
机构
[1] Sichuan Univ, Polymer Res Inst, State Key Lab Polymer Mat Engn, Chengdu 610065, Peoples R China
基金
中国国家自然科学基金;
关键词
Polyvinyl alcohol; Polyethyleneimine; Phosphotungstic acid; Proton exchange membrane; Direct methanol fuel cell; POLY(ETHER ETHER KETONE); COMPOSITE MEMBRANES; POLYMER ELECTROLYTE; HIGH SELECTIVITY; CONDUCTIVITY; DMFC; ENHANCEMENT; MOLYBDENUM; NANOFIBERS; NANOSHEETS;
D O I
10.1016/j.polymer.2024.126785
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Serving as the central part of a direct-methanol fuel cell (DMFC), a proton exchange membrane (PEM) is used to conduct protons, isolate electrons and fuel, and ensure the proper operation of the battery. The novel hybrid proton exchange membrane (PEM) proposed in the present work is comprised of polyethyleneimine (PEI) and polyvinyl alcohol (PVA) doped with phosphotungstic acid (PWA). PEI provides numerous locations for PWA anchoring and allows for the creation of efficient and continuous proton transport channels over long distances. PEI can be cross-linked with PVA through Glutaraldehyde (GA), which not only suppresses the disadvantage of PVA as a proton exchange membrane that tends to swell after water absorption and leads to deformation, but also the hydrogen-bonded network structure formed after cross-linking is conducive to proton hopping conduction, which synergistically improves the proton conduction rate of PEMs. A good compromise between the amount of PWA doping and the electrochemical properties of PEMs can result in optimal performance. Compared to other reported PEMs that use hetero-poly acids or other inorganic acids, PVA/PEI-PWA2 PEM exhibits superior overall properties. The highest proton conductivity of PVA/PEI-PWA2 is 124.3 mS cm-1 at 80 degrees C, the highest peak power density can reach 109.8 mW cm-2 (301.8 mA cm-2) at 60 degrees C, and the methanol barrier performance and selective permeability are 4.95 x 10-7 cm2 s- 1 and 12.32 x 104 S s cm-3, respectively.
引用
收藏
页数:13
相关论文
共 50 条
[31]   Progress in proton-exchange membranes for direct methanol fuel cells [J].
Fu, XZ ;
Li, J ;
Li, CH ;
Liao, DW .
PROGRESS IN CHEMISTRY, 2004, 16 (01) :77-82
[32]   Studies on the Preparation and Characterization of Poly(vinyl alcohol-co-styrenesulfonic acid)-Based Proton Exchange Membranes for Direct Methanol Fuel Cell [J].
Choudhury, Rikarani R. ;
Gohil, Jaydevsinh M. .
POLYMER-KOREA, 2022, 46 (05) :627-639
[33]   Review of the proton exchange membranes for fuel cell applications [J].
Peighambardoust, S. J. ;
Rowshanzamir, S. ;
Amjadi, M. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (17) :9349-9384
[34]   Reduced methanol crossover and enhanced proton transport in nanocomposite membranes based on clay-CNTs hybrid materials for direct methanol fuel cells [J].
Simari, Cataldo ;
Baglio, Vincenzo ;
Lo Vecchio, Carmelo ;
Arico, Antonino S. ;
Agostino, Raffaele G. ;
Coppola, Luigi ;
Rossi, Cesare Oliviero ;
Nicotera, Isabella .
IONICS, 2017, 23 (08) :2113-2123
[35]   Proton exchange membranes modified with sulfonated silica nanoparticles for direct methanol fuel cells [J].
Su, Yu-Huei ;
Liu, Ying-Ling ;
Sun, Yi-Ming ;
Lai, Juin-Yih ;
Wang, Da-Ming ;
Gao, Yan ;
Liu, Baijun ;
Guiver, Michael D. .
JOURNAL OF MEMBRANE SCIENCE, 2007, 296 (1-2) :21-28
[36]   Thermally crosslinked sulfonated polyethersulfone proton exchange membranes for direct methanol fuel cells [J].
Gil, Seung Chul ;
Kim, Jin Chul ;
Ahn, Dahee ;
Jang, Jin-Sung ;
Kim, Haekyoung ;
Jung, Jin Chul ;
Lim, Seongyop ;
Jung, Doo-Hwan ;
Lee, Wonmok .
JOURNAL OF MEMBRANE SCIENCE, 2012, 417 :2-9
[37]   Nafion-based magnetically aligned nanocomposite proton exchange membranes for direct methanol fuel cells [J].
Hasanabadi, Noushin ;
Ghaffarian, Seyed Reza ;
Hasani-Sadrabadi, Mohammad Mahdi .
SOLID STATE IONICS, 2013, 232 :58-67
[38]   Proton conducting hydrocarbon membranes: Performance evaluation for room temperature direct methanol fuel cells [J].
Krivobokov, Ivan M. ;
Gribov, Evgeniy N. ;
Okunev, Alexey G. .
ELECTROCHIMICA ACTA, 2011, 56 (05) :2420-2427
[39]   Facilitating Proton Transport with Enhanced Water Conservation Membranes for Direct Methanol Fuel Cells [J].
Li, Jinsheng ;
Lou, Jiaqi ;
Wang, Zhe ;
Wang, Lei ;
Liu, Fengxiang ;
Pu, Xingtong ;
Hu, Jianglei ;
Wang, Shuang ;
Zhao, Chengji .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2020, 8 (15) :5880-5890
[40]   Crosslinked sulfonated poly(ether ether ketone) proton exchange membranes for direct methanol fuel cell applications [J].
Zhong, Shuangling ;
Cui, Xuejun ;
Cai, Hongli ;
Fu, Tiezhu ;
Zhao, Chengji ;
Na, Hui .
JOURNAL OF POWER SOURCES, 2007, 164 (01) :65-72