Open Access
Open access
volume 13 issue 1 publication number 14127

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

Publication typeJournal Article
Publication date2023-08-29
scimago Q1
wos Q1
SJR0.874
CiteScore6.7
Impact factor3.9
ISSN20452322
Multidisciplinary
Abstract

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.

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GOST Copy
Olbrich W. et al. Structure and conductivity of ionomer in PEM fuel cell catalyst layers: a model-based analysis // Scientific Reports. 2023. Vol. 13. No. 1. 14127
GOST all authors (up to 50) Copy
Olbrich W., Kadyk T., Sauter U., Eikerling M., Gostick J. Structure and conductivity of ionomer in PEM fuel cell catalyst layers: a model-based analysis // Scientific Reports. 2023. Vol. 13. No. 1. 14127
RIS |
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RIS Copy
TY - JOUR
DO - 10.1038/s41598-023-40637-0
UR - https://doi.org/10.1038/s41598-023-40637-0
TI - Structure and conductivity of ionomer in PEM fuel cell catalyst layers: a model-based analysis
T2 - Scientific Reports
AU - Olbrich, W.
AU - Kadyk, T
AU - Sauter, U
AU - Eikerling, Michael
AU - Gostick, J.
PY - 2023
DA - 2023/08/29
PB - Springer Nature
IS - 1
VL - 13
PMID - 37644035
SN - 2045-2322
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2023_Olbrich,
author = {W. Olbrich and T Kadyk and U Sauter and Michael Eikerling and J. Gostick},
title = {Structure and conductivity of ionomer in PEM fuel cell catalyst layers: a model-based analysis},
journal = {Scientific Reports},
year = {2023},
volume = {13},
publisher = {Springer Nature},
month = {aug},
url = {https://doi.org/10.1038/s41598-023-40637-0},
number = {1},
pages = {14127},
doi = {10.1038/s41598-023-40637-0}
}