Multiscale Architectured Membranes, Electrodes, and Transport Layers for Next-Generation Polymer Electrolyte Membrane Fuel Cells

被引:23
|
作者
Jang, Segeun [1 ]
Kang, Yun Sik [2 ]
Kim, Dohoon [1 ]
Park, Subin [3 ]
Seol, Changwook [4 ]
Lee, Sungchul [5 ]
Kim, Sang Moon [4 ]
Yoo, Sung Jong [3 ,6 ,7 ]
机构
[1] Kookmin Univ, Sch Mech Engn, Seoul 02707, South Korea
[2] Korea Inst Energy Res KIER, Fuel Cell Lab, Daejeon 34129, South Korea
[3] Korea Inst Sci & Technol KIST, Hydrogen & Fuel Cell Res, Seoul 02792, South Korea
[4] Incheon Natl Univ, Dept Mech Engn, Incheon 22012, South Korea
[5] Hyundai Mobis Co Ltd, Fuel Cell Core Parts Dev Cell, Uiwang 16082, South Korea
[6] Kyung Hee Univ, KHU KIST Dept Converging Sci & Technol, 26 Kyungheedae Ro, Seoul 02447, South Korea
[7] Univ Sci & Technol UST, KIST Sch, Div Energy & Environm Technol, Daejeon 34113, South Korea
基金
新加坡国家研究基金会;
关键词
electrodes; membranes; multiscale architecturing; polymer electrolyte membrane fuel cells; transport layers; GAS-DIFFUSION LAYER; ULTRATHIN CATALYST LAYER; OXYGEN REDUCTION; NANOTUBE ARRAYS; MASS-TRANSPORT; PATTERNED WETTABILITY; FACILE PREPARATION; WATER MANAGEMENT; NAFION MEMBRANES; BIPOLAR PLATES;
D O I
10.1002/adma.202204902
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Over the past few decades, considerable advances have been achieved in polymer electrolyte membrane fuel cells (PEMFCs) based on the development of material technology. Recently, an emerging multiscale architecturing technology covering nanometer, micrometer, and millimeter scales has been regarded as an alternative strategy to overcome the hindrance to achieving high-performance and reliable PEMFCs. This review summarizes the recent progress in the key components of PEMFCs based on a novel architecture strategy. In the first section, diverse architectural methods for patterning the membrane surface with random, single-scale, and multiscale structures as well as their efficacy for improving catalyst utilization, charge transport, and water management are discussed. In the subsequent section, the electrode structures designed with 1D and 3D multiscale structures to enable low Pt usage, improve oxygen transport, and achieve high electrode durability are elucidated. Finally, recent advances in the architectured transport layer for improving mass transportation including pore gradient, perforation, and patterned wettability for gas diffusion layer and 3D structured/engineered flow fields are described.
引用
收藏
页数:33
相关论文
共 50 条
  • [41] Electrosprayed catalyst layers based on graphene–carbon black hybrids for the next-generation fuel cell electrodes
    Lale Işıkel Şanlı
    Begüm Yarar
    Vildan Bayram
    Selmiye Alkan Gürsel
    Journal of Materials Science, 2017, 52 : 2091 - 2102
  • [42] Field test of next-generation fuel cells started for a wide range of applications - 250-kW polymer electrolyte fuel cell system
    Ohtsu, S
    Kudo, K
    Imaeda, H
    Hoshijima, K
    Hirano, M
    Yachi, T
    NTT REVIEW, 2001, 13 (03): : 68 - 71
  • [43] Modeling of ion and water transport in the polymer electrolyte membrane of PEM fuel cells
    Baschuk, J. J.
    Li, Xianguo
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2010, 35 (10) : 5095 - 5103
  • [44] Oxygen Mass Transport Limitations at the Cathode of Polymer Electrolyte Membrane Fuel Cells
    Benziger, Jay
    Kimball, Erin
    Mejia-Ariza, Raquel
    Kevrekidis, Ioannis
    AICHE JOURNAL, 2011, 57 (09) : 2505 - 2517
  • [45] Synergistic analysis of oxygen transport resistance in polymer electrolyte membrane fuel cells
    Chun, Hyunsoo
    Lee, Youngseop
    Kim, Jiwoong
    Chang, Jung Hyo
    Sim, Jaebong
    Kim, Jin Young
    Min, Kyoungdoug
    ENERGY CONVERSION AND MANAGEMENT, 2025, 325
  • [46] Organic aromatic polymers for proton transport in polymer electrolyte membrane fuel cells
    Kinsinger, Corey
    Liu, Yuan
    Liu, Feilong
    Herring, Andrew
    Maupin, C. Mark
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2014, 248
  • [47] Lattice Boltzmann simulation of liquid water transport in microporous and gas diffusion layers of polymer electrolyte membrane fuel cells
    Kim, Kwang Nam
    Kang, Jung Ho
    Lee, Sang Gun
    Nam, Jin Hyun
    Kim, Charn-Jung
    JOURNAL OF POWER SOURCES, 2015, 278 : 703 - 717
  • [48] Platinum/carbon nanofiber electrodes for polymer electrolyte membrane (PEM) fuel cells.
    Guha, A
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2004, 228 : U462 - U462
  • [49] Investigation of water transport dynamics in polymer electrolyte membrane fuel cells based on high porous micro porous layers
    Alrwashdeh, Saad S.
    Markoetter, Henning
    Haussmann, Jan
    Arlt, Tobias
    Klages, Merle
    Scholta, Joachim
    Banhart, John
    Manke, Ingo
    ENERGY, 2016, 102 : 161 - 165
  • [50] Structure of porous electrodes in polymer electrolyte membrane fuel cells: An optical reconstruction technique
    Berejnov, Viatcheslav
    Sinton, David
    Djilali, Ned
    JOURNAL OF POWER SOURCES, 2010, 195 (07) : 1936 - 1939