Structure and conductivity of ionomer in PEM fuel cell catalyst layers: a model-based analysis

被引:9
作者
Olbrich, W. [1 ,2 ,3 ]
Kadyk, T. [1 ,4 ]
Sauter, U. [2 ]
Eikerling, M. [1 ,3 ,4 ]
Gostick, J. [5 ]
机构
[1] Forschungszentrum Julich, Inst Energy & Climate Res, Theory & Computat Energy Mat IEK 13, D-52425 Julich, Germany
[2] Robert Bosch GmbH, Corp Res, D-71272 Renningen, Germany
[3] Rhein Westfal TH Aachen, Fac Georesources & Mat Engn, Chair Theory & Computat Energy Mat, D-52062 Aachen, Germany
[4] Julich Aachen Res Alliance, JARA Energy, D-52425 Julich, Germany
[5] Univ Waterloo, Dept Chem Engn, Waterloo, ON, Canada
关键词
EFFECTIVE TRANSPORT-PROPERTIES; PROTON-CONDUCTIVITY; PERFORMANCE; MICROSTRUCTURE; RECONSTRUCTION; NAFION; OPTIMIZATION; SIMULATION; ELECTRODES; DIFFUSION;
D O I
10.1038/s41598-023-40637-0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Efforts in design and optimization of catalyst layers for polymer electrolyte fuel cells hinge on mathematical models that link electrode composition and microstructure with effective physico-chemical properties. A pivotal property of these layers and the focus of this work is the proton conductivity, which is largely determined by the morphology of the ionomer. However, available relations between catalyst layer composition and proton conductivity are often adopted from general theories for random heterogeneous media and ignore specific features of the microstructure, e.g., agglomerates, film-like structures, or the hierarchical porous network. To establish a comprehensive understanding of the peculiar structure-property relations, we generated synthetic volumetric images of the catalyst layer microstructure. In a mesoscopic volume element, we modeled the electrolyte phase and calculated the proton conductivity using numerical tools. Varying the ionomer morphology in terms of ionomer film coverage and thickness revealed two limiting cases: the ionomer can either form a thin film with high coverage on the catalyst agglomerates; or the ionomer exists as voluminous chunks that connect across the inter-agglomerate space. Both cases were modeled analytically, adapting relations from percolation theory. Based on the simulated data, a novel relation is proposed, which links the catalyst layer microstructure to the proton conductivity over a wide range of morphologies. The presented analytical approach is a versatile tool for the interpretation of experimental trends and it provides valuable guidance for catalyst layer design. The proposed model was used to analyze the formation of the catalyst layer microstructure during the ink stage. A parameter study of the initial ionomer film thickness and the ionomer dispersion parameter revealed that the ionomer morphology should be tweaked towards well-defined films with high coverage of catalyst agglomerates. These implications match current efforts in the experimental literature and they may thus provide direction in electrode materials research for polymer electrolyte fuel cells.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Robust Model-Based Fault Diagnosis for PEM Fuel Cell Air-Feed System
    Liu, Jianxing
    Luo, Wensheng
    Yang, Xiaozhan
    Wu, Ligang
    IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2016, 63 (05) : 3261 - 3270
  • [32] Pulse electrodeposited cathode catalyst layers for PEM fuel cells
    Egetenmeyer, A.
    Radev, I.
    Durneata, D.
    Baumgaertner, M.
    Peinecke, V.
    Natter, H.
    Hempelmann, R.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (19) : 13649 - 13660
  • [33] Effect of Pt nano-particle size on the microstructure of PEM fuel cell catalyst layers: Insights from molecular dynamics simulations
    Cheng, C. H.
    Malek, K.
    Sui, P. C.
    Djilali, N.
    ELECTROCHIMICA ACTA, 2010, 55 (05) : 1588 - 1597
  • [34] Effect of Solid Content and Ionomer-to-Carbon Ratio on High-Solid-Content Ink-Cast Catalyst Layers for PEM Fuel Cells
    Li, Dewei
    Niu, Kai
    Yang, Ruoxi
    Van Haeverbeke, Maxime
    Zhang, Yiming
    Shi, Wenbo
    Yang, Yupeng
    Zhang, Jianbo
    Wang, Yu'nan
    ENERGY & FUELS, 2025, 39 (05) : 2782 - 2789
  • [35] A significant improvement of oxygen diffusion in catalyst layer based on hydrocarbon ionomer containing dimethyl silicone oil for PEM fuel cells
    Kim, Taeyoung
    Yim, Sung-Dae
    Choi, Young-Woo
    Yang, Tae-Hyun
    Yoon, Young-Gi
    Park, Seok-Hee
    Kim, Chang-Soo
    Sung, Il-Kwon
    ELECTROCHEMISTRY COMMUNICATIONS, 2011, 13 (12) : 1313 - 1316
  • [36] A scalable PEM fuel cell model for coupled mechanical and electrochemical analysis based on an analytical approach
    Kohrn, Markus
    Liu, Yingxu
    Wick, Maximilian
    Pischinger, Stefan
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 51 : 1539 - 1559
  • [37] PEMFC Catalyst Layers: The Role of Micropores and Mesopores on Water Sorption and Fuel Cell Activity
    Soboleva, Tatyana
    Malek, Kourosh
    Xie, Zhong
    Navessin, Titichai
    Holdcroft, Steven
    ACS APPLIED MATERIALS & INTERFACES, 2011, 3 (06) : 1827 - 1837
  • [38] The Effect of Carbon Support Surface Functionalization on PEM Fuel Cell Performance, Durability, and Ionomer Coverage in the Catalyst Layer
    Fang, Zhengyuan
    Lee, Moo Seok
    Kim, Jun Young
    Kim, Jung Ho
    Fuller, Thomas F.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2020, 167 (06)
  • [39] A Model for High-Temperature PEM Fuel Cell: The Role of Transport in the Cathode Catalyst Layer
    Shamardina, O.
    Kulikovsky, A. A.
    Chertovich, A. V.
    Khokhlov, A. R.
    FUEL CELLS, 2012, 12 (04) : 577 - 582
  • [40] Screen Printing Catalyst Inks With Enhanced Process Stability for PEM Fuel Cell Production
    Ney, Linda
    Seidl, Nikolas
    Singh, Rajveer
    Schneider, Patrick
    Stross, Dominik
    Goeppentin, Andreas
    Tepner, Sebastian
    Klingele, Matthias
    Keding, Roman
    FUEL CELLS, 2025, 25 (02)