Bipolar plates and Power-to-X
In addition to the membrane electrode assembly, the bipolar plate also influences the performance, service life, and cost of a fuel cell. Fraunhofer ILT is therefore developing laser processes for several steps in its manufacturing, from patterning and coating to cutting and hydrogen-tight welding.
The HyCoFC research project demonstrates how new materials and laser processes can be combined. The project is developing large-format hybrid compound bipolar plates for fuel cells, which are intended, among other things, for use in heavy-duty vehicles. These plates combine a metallic carrier foil with a conductive compound foil.
Fraunhofer ILT is developing laser-based processes for structuring, selectively removing individual material layers, and joining the different materials. The precise and localized processing makes it possible to tailor the properties of the hybrid plate without unnecessarily affecting adjacent material layers.
Dual-beam welding offers another way to accelerate the production of metallic bipolar plates. The process uses two laser beams simultaneously, reducing the processing time for a typical bipolar plate contour from approximately 4.6 to 2.4 seconds. In the overlapping area of the two scan fields, both beams can act on the same spot to selectively influence melt pool dynamics, enabling higher welding speeds and helping to avoid typical defects such as humping without compromising weld quality.
Many of these processes can be studied not only individually but also combined into complete production chains at Fraunhofer ILT’s Hydrogen Lab. Laser-based test facilities and test benches are available for this purpose in a space of approximately 300 square meters. Researchers and companies can test individual process steps there as well as the interaction of multiple processes under realistic conditions.
However, hydrogen serves not only as an energy carrier for fuel cells or as a storage medium. It also serves as a feedstock for other energy carriers and chemical products. For such Power-to-X applications as well, Fraunhofer ILT is developing laser-based manufacturing processes for components and systems that must withstand high thermal, chemical, or mechanical stresses.
“At the trade show, we’d especially like to talk with companies about where laser technology can add real value to their process chains,” explains Matthias Laermann, who is responsible for the Hydrogen Lab at Fraunhofer ILT. “This isn’t just about a single process. We continue to develop solutions together with our partners, always keeping the path to industrial production in mind.”
Fraunhofer ILT will present its work from October 20 to 22, 2026, at the Hydrogen Technology World Expo in Hamburg. Visitors can find the team in Hall B5, Booth F44.