Tuned polymer electrolyte membranes based on aromatic polyethers for fuel cell applications

被引:317
|
作者
Miyatake, Kenji [1 ]
Chikashige, Yohei [1 ]
Higuchi, Eiji [1 ]
Watanabe, Masahiro [1 ]
机构
[1] Yamanashi Univ, Clean Energy Res Ctr, Kofu, Yamanashi 4008510, Japan
关键词
D O I
10.1021/ja0672526
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Poly(arylene ether sulfone)-based ionomers containing sulfofluorenyl groups have been synthesized for applications to polymer electrolyte membrane fuel cells (PEMFCs). In order to achieve high proton conductivity and chemical, mechanical, and dimensional stability, the molecular structure of the ionomers has been optimized. Tough, flexible, and transparent membranes were obtained from a series of modified ionomers containing methyl groups with the ion-exchange capacity (IEC) ranging from 1.32 to 3.26 meq/g. Isopropylidene tetramethylbiphenylene moieties were more effective than the methyl-substituted fluorenyl groups in giving a high-IEC ionomer membrane with substantial stability to hydrolysis and oxidation. Dimensional stability was significantly improved for the methyl-substituted ionomer membranes compared to that of the non-methylated ones. This new ionomer membrane showed comparable proton conductivity to that of the perfluorinated ionomer membrane (Nafion 112) under a wide range of conditions (80-120 degrees C and 20-93% relative humidity (RH)). The highest proton conductivity of 0.3 S/cm was obtained at 80 degrees C and 93% RH. Although there is a decline of proton conductivity with time, after 10 000 h the proton conductivities were still at acceptable levels for fuel cell operation. The membranes retained their strength, flexibility, and high molecular weight after 10 000 h. Microscopic analyses revealed well-connected ionic clusters for the high-IEC membrane. A fuel cell operated using the polyether ionomer membrane showed better performance than that of Nafion at a low humidity of 20% RH and high temperature of 90 degrees C. Unlike the other hydrocarbon ionomers, the present membrane showed a lower resistance than expected from its conductivity, indicating superior water-holding capability at high temperature and low humidity.
引用
收藏
页码:3879 / 3887
页数:9
相关论文
共 50 条
  • [1] Tuned polymer electrolyte membranes based on aromatic polyethers for fuel cell applications
    Miyatake, Kenji
    Chikashige, Yohei
    Higuchi, Eiji
    Watanabe, Masahiro
    Journal of the American Chemical Society, 2007, 129 (13): : 3879 - 3887
  • [2] Side Chain Crosslinking of Aromatic Polyethers for High Temperature Polymer Electrolyte Membrane Fuel Cell Applications
    Voege, Andrea
    Deimede, Valadoula A.
    Kallitsis, Joannis K.
    JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY, 2012, 50 (02) : 207 - 216
  • [3] Polymer electrolyte membranes for high-temperature fuel cells based on aromatic polyethers bearing pyridine units
    Kallitsis, Joannis K.
    Geormezi, Maria
    Neophytides, Stylianos G.
    POLYMER INTERNATIONAL, 2009, 58 (11) : 1226 - 1233
  • [4] Hybrid Membranes based on Aromatic Polymer Blends for Fuel Cell Applications
    de Bonis, Catia
    D'Epifanio, Alessandra
    Mecheri, Barbara
    Di Vona, M. Luisa
    Trombetta, M.
    Traversa, E.
    Licoccia, S.
    SOLID-STATE IONICS-2008, 2009, 1126 : 87 - +
  • [5] Alkaline polymer electrolyte membranes for fuel cell applications
    Wang, Yan-Jie
    Qiao, Jinli
    Baker, Ryan
    Zhang, Jiujun
    CHEMICAL SOCIETY REVIEWS, 2013, 42 (13) : 5768 - 5787
  • [6] Solid polymer electrolyte membranes for fuel cell applications - a review
    Smitha, B
    Sridhar, S
    Khan, AA
    JOURNAL OF MEMBRANE SCIENCE, 2005, 259 (1-2) : 10 - 26
  • [7] Cross-Linking of Side Chain Unsaturated Aromatic Polyethers for High Temperature Polymer Electrolyte Membrane Fuel Cell Applications
    Papadimitriou, Konstantinia D.
    Paloukis, Fotis
    Neophytides, Stylianos G.
    Kallitsis, Joannis K.
    MACROMOLECULES, 2011, 44 (12) : 4942 - 4951
  • [8] Improvement of polymer electrolyte membranes for polymer electrolyte membrane and direct methanol fuel cell applications
    Qiao, L
    Agoumba, D
    Waterfeld, A
    Thrasher, JS
    POWER SOURCES FOR THE NEW MILLENNIUM, PROCEEDINGS, 2001, 2000 (22): : 92 - 102
  • [9] Polymer Electrolyte Membranes Based on Nafion and a Superacidic Inorganic Additive for Fuel Cell Applications
    Mazzapioda, Lucia
    Panero, Stefania
    Navarra, Maria Assunta
    POLYMERS, 2019, 11 (05)
  • [10] Poly(phenylene oxide)-based polymer electrolyte membranes for fuel-cell applications
    Ramya, K
    Dhathathreyan, KS
    JOURNAL OF APPLIED POLYMER SCIENCE, 2003, 88 (02) : 307 - 311