A Scalable and Robust Water Management Strategy for PEMFCs: Operando Electrothermal Mapping and Neutron Imaging Study

Author:

Xu Linlin1ORCID,Trogadas Panagiotis12ORCID,Zhou Shangwei3,Jiang Shuxian1,Wu Yunsong34,Rasha Lara35,Kockelmann Winfried6,Yang Jia Di3,Neville Toby3,Jervis Rhodri3,Brett Dan J. L.3,Coppens Marc‐Olivier1ORCID

Affiliation:

1. Centre for Nature‐Inspired Engineering Department of Chemical Engineering University College London London WC1E 7JE UK

2. Department of Chemistry Aristotle University of Thessaloniki Thessaloniki 54124 Greece

3. Electrochemical Innovation Lab Department of Chemical Engineering University College London London WC1E 7JE UK

4. School of Electrical Engineering Southwest Jiaotong University Chengdu Sichuan 611756 China

5. The Faraday Institution Quad One Harwell Science and Innovation Campus Didcot OX11 0RA UK

6. Science and Technology Facilities Council Rutherford Appleton Laboratory ISIS Facility Harwell Oxford OX11 0QX UK

Abstract

AbstractEffective water management is crucial for the optimal operation of low‐temperature polymer electrolyte membrane fuel cells (PEMFCs). Excessive liquid water production can cause flooding in the gas diffusion electrodes and flow channels, limiting mass transfer and reducing PEMFC performance. To tackle this issue, a nature‐inspired chemical engineering (NICE) approach has been adopted that takes cues from the integument structure of desert‐dwelling lizards for passive water transport. By incorporating engraved, capillary microchannels into conventional flow fields, PEMFC performance improves significantly, including a 15% increase in maximum power density for a 25 cm2 cell and 13% for a 100 cm2 cell. Electro‐thermal maps of the lizard‐inspired flow field demonstrate a more uniform spatial distribution of current density and temperature than the conventional design. Neutron radiography provides evidence that capillary microchannels in the lizard‐inspired flow field facilitate the efficient transport and removal of generated liquid water, thereby preventing blockages in the reactant channels. These findings present a universally applicable and highly efficient water management strategy for PEMFCs, with the potential for widespread practical implementation for other electrochemical devices.

Funder

Engineering and Physical Sciences Research Council

China Scholarship Council

Faraday Institution

Publisher

Wiley

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