Development of a Heat-Treated Polymer-Polymer Type Charge-Transfer Blend Membrane for Application in Polymer Electrolyte Fuel Cells

被引:8
|
作者
Feng, Shiyan [1 ]
Kondo, Shoichi [2 ]
Kikuchi, Takamasa [2 ]
Christiani, Liana [1 ]
Hwang, Byungchan [1 ]
Sasaki, Kazuriari [1 ,3 ,4 ,5 ]
Nishihara, Masamichi [3 ,4 ,5 ]
机构
[1] Kyushu Univ, Grad Sch Engn, Fukuoka, Fukuoka 8190395, Japan
[2] Nissan Chem Corp, Chiba 2740052, Japan
[3] Kyushu Univ, Int Inst Carbon Neutral Energy Res WPI I2CNER, World Premier Int Res Ctr Initiat, Fukuoka, Fukuoka 8190395, Japan
[4] Kyushu Univ, Ctr Coevolutionary Res Sustainable Communities C2, Fukuoka, Fukuoka 8190395, Japan
[5] Kyushu Univ, Next Generat Fuel Cell Res Ctr NEXT FC, Fukuoka, Fukuoka 8190395, Japan
来源
ACS APPLIED ENERGY MATERIALS | 2019年 / 2卷 / 12期
关键词
charge-transfer complex; blend membrane; polymer electrolyte membrane; fuel cell; heat treatment; IONOMER;
D O I
10.1021/acsaem.9b01697
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We developed polymer electrolyte membranes (PEMs) utilizing charge-transfer (CT) interactions for polymer electrolyte fuel cells (PEFCs). CT complex formation was applied to control the position of proton conductive groups in the membranes. To understand the effect of CT complex formation on PEM performance, heat treatment was performed to enhance the extent of CT complex formation in the membrane. In this work, sulfonated polyimide (SPI) was used as the electron-accepting polymer, while polyether-containing electron-rich dialkoxy-naphthalene (Poly-DAN) was used as the electron-donating polymer. After heat treatment at 150 degrees C for 50 h, the concentration of CT complex in the membrane was significantly enhanced by about 13 times. Heat-treated SPI/Poly-DAN membranes showed higher mechanical strength (50.8 MPa) than Nafion 212 (15.5 MPa) and highly chemical durability compared to the untreated membrane by the synergetic effect of enhanced CT complex formation and chemical cross-linking. Heat-treated SPI/Poly-DAN membranes also showed reasonable proton conductivity (32.3 mS cm(-1), 80 degrees C, and 90% RH), although some cross-linking occurred between sulfonic acid units due to the heat treatment process. In single cell tests, heat-treated SPI/Poly-DAN membranes had maximum power densities of 255 mW cm(-2) at 80 degrees C and 95% RH and 59.0 mW cm(-2) at 110 degrees C and 31% RH, indicating that these heat-treated CT complex membranes could be used for fuel cell applications.
引用
收藏
页码:8715 / 8723
页数:17
相关论文
共 50 条
  • [1] Development of polymer-polymer type charge-transfer blend membranes for fuel cell application
    Feng, Shiyan
    Kondo, Shoichi
    Kaseyama, Takahiro
    Nakazawa, Taichi
    Kikuchi, Takamasa
    Selyanchyn, Roman
    Fujikawa, Shigenori
    Christiani, Liana
    Sasaki, Kazunari
    Nishihara, Masamichi
    [J]. JOURNAL OF MEMBRANE SCIENCE, 2018, 548 : 223 - 231
  • [2] Characterization of polymer-polymer type charge-transfer (CT) blend membranes for fuel cell application
    Feng, Shiyan
    Kondo, Shoichi
    Kaseyama, Takahiro
    Nakazawa, Taichi
    Kikuchi, Takamasa
    Selyanchyn, Roman
    Fujikawa, Shigenori
    Christiani, Liana
    Sasaki, Kazunari
    Nishihara, Masamichi
    [J]. DATA IN BRIEF, 2018, 18 : 22 - 29
  • [3] Modeling mass and heat transfer in membrane humidifiers for polymer electrolyte membrane fuel cells
    Schoenfeld, Ladislaus
    Kreitmeir, Michael
    Wolfenstetter, Florian
    Neumann, Maximilian
    Klein, Harald
    Rehfeldt, Sebastian
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2024, 223
  • [4] Aliphatic SPI charge-transfer complex hybrid films for high temperature polymer electrolyte membrane fuel cells
    Christiani, Liana
    Sasaki, Kazunari
    Nishihara, Masamichi
    [J]. JOURNAL OF APPLIED POLYMER SCIENCE, 2018, 135 (14)
  • [5] Polymer Electrolyte Membrane Fuel Cells
    Antonio Asensio, Juan
    Pena, Juan
    Perez-Coll, Domingo
    Carlos Ruiz-Morales, Juan
    Marrero-Lopez, David
    Nunez, Pedro
    Ballesteros, Belen
    Canales-Vazquez, Jesus
    Borros, Salvador
    Gomez-Romero, Pedro
    [J]. AFINIDAD, 2011, 68 (554) : 246 - 258
  • [6] PHOTOCONDUCTIVITY OF DOUBLE-LAYER POLYMER-POLYMER SYSTEMS DOPED WITH CHARGE-TRANSFER COMPLEXES
    WOJCIECHOWSKI, P
    KRYSZEWSKI, M
    [J]. ACTA PHYSICA POLONICA A, 1979, 56 (01) : 89 - 97
  • [7] Tuning interfacial charge-transfer excitons at polymer-polymer heterojunctions under hydrostatic pressure
    Schmidtke, Johanna P.
    Friend, Richard H.
    Silva, Carlos
    [J]. PHYSICAL REVIEW LETTERS, 2008, 100 (15)
  • [8] Application of thermal imaging to validate a heat transfer model for polymer electrolyte fuel cells
    Matian, M.
    Marquis, A.
    Brandon, N. P.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (22) : 12308 - 12316
  • [9] Catalytic activity and stability of heat-treated iron phthalocyanines for the electroreduction of oxygen in polymer electrolyte fuel cells
    Lalande, G
    Faubert, G
    Cote, R
    Guay, D
    Dodelet, JP
    Weng, LT
    Bertrand, P
    [J]. JOURNAL OF POWER SOURCES, 1996, 61 (1-2) : 227 - 237
  • [10] Minichannels in polymer electrolyte membrane fuel cells
    Trabold, TA
    [J]. HEAT TRANSFER ENGINEERING, 2005, 26 (03) : 3 - 12