Monitoring of Fluid Transport in Low Temperature Water Electrolyzers and Fuel Cells: Emerging Technologies and Future Prospects

Fuente: arXiv
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Main Authors: Dou, Zehua, Tropf, Laura, Lappan, Tobias, Rox, Hannes, Yang, Xuegeng, Buettner, Lars, Weik, David, Hoster, Harry, Eckert, Kerstin, Czarske, Juergen
Format: Preprint
Published: 2025
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author Dou, Zehua
Tropf, Laura
Lappan, Tobias
Rox, Hannes
Yang, Xuegeng
Buettner, Lars
Weik, David
Hoster, Harry
Eckert, Kerstin
Czarske, Juergen
author_facet Dou, Zehua
Tropf, Laura
Lappan, Tobias
Rox, Hannes
Yang, Xuegeng
Buettner, Lars
Weik, David
Hoster, Harry
Eckert, Kerstin
Czarske, Juergen
contents Low temperature water electrolyzers (LTWEs) and low temperature hydrogen fuel cells (LTFCs) present a promising technological strategy for the productions and usages of green hydrogen energy towards a net-zero world. However, the interactions of gas/liquid (fluid) transport and the intrinsic reaction kinetics in LTWEs/LTFCs present one of the key hurdles hindering high production rate and high energy conversion efficiency. Addressing these limitations requires analytical tools that are capable of resolving fluid transport across the heterogeneous, multiscale structures of operating LTWE and LTFC systems. This review provides a comprehensive overview of recent advancements in measurement technologies for investigating fluid transport. We first outline the technical requirements of such analytical systems, and assess the capabilities and limitations of established optical, X-rays and neutrons based imaging systems. We emphasis on emerging strategies that utilize integrated miniaturized sensors, ultrasound, and other alternative physical principles to achieve operando, high-resolution, and scalable measurements towards applications at device and system levels. Finally, we outline future directions in this highly interdisciplinary field, emphasizing the importance of next-generation sensing concepts to overcome the fluid transport hurdle, towards accelerating the deployment of green hydrogen technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2510_12542
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Monitoring of Fluid Transport in Low Temperature Water Electrolyzers and Fuel Cells: Emerging Technologies and Future Prospects
Dou, Zehua
Tropf, Laura
Lappan, Tobias
Rox, Hannes
Yang, Xuegeng
Buettner, Lars
Weik, David
Hoster, Harry
Eckert, Kerstin
Czarske, Juergen
Applied Physics
Low temperature water electrolyzers (LTWEs) and low temperature hydrogen fuel cells (LTFCs) present a promising technological strategy for the productions and usages of green hydrogen energy towards a net-zero world. However, the interactions of gas/liquid (fluid) transport and the intrinsic reaction kinetics in LTWEs/LTFCs present one of the key hurdles hindering high production rate and high energy conversion efficiency. Addressing these limitations requires analytical tools that are capable of resolving fluid transport across the heterogeneous, multiscale structures of operating LTWE and LTFC systems. This review provides a comprehensive overview of recent advancements in measurement technologies for investigating fluid transport. We first outline the technical requirements of such analytical systems, and assess the capabilities and limitations of established optical, X-rays and neutrons based imaging systems. We emphasis on emerging strategies that utilize integrated miniaturized sensors, ultrasound, and other alternative physical principles to achieve operando, high-resolution, and scalable measurements towards applications at device and system levels. Finally, we outline future directions in this highly interdisciplinary field, emphasizing the importance of next-generation sensing concepts to overcome the fluid transport hurdle, towards accelerating the deployment of green hydrogen technologies.
title Monitoring of Fluid Transport in Low Temperature Water Electrolyzers and Fuel Cells: Emerging Technologies and Future Prospects
topic Applied Physics
url https://arxiv.org/abs/2510.12542