Green hydrogen with PEC electrolysers: New insights into transport processes

In this ‘reactor’, the transport processes within the PEC cell during electrolysis were analysed using two different visualisation methods.

In this ‘reactor’, the transport processes within the PEC cell during electrolysis were analysed using two different visualisation methods. © HZB

One method of storing solar energy is to use PEC electrolysers to produce hydrogen. However, scaling up this technology remains challenging. Now, a team at the HZB Institute for Solar Fuels has used 2D fluorescence imaging and particle velocimetry to observe the movement of ions and dissolved gases within the electrolyte during electrolysis. These new insights may prove useful in the development of larger PEC electrolysers.

Green hydrogen plays a major role in achieving a climate-neutral future. One option for producing green hydrogen involves photoelectrochemical (PEC) electrolysers with special photoelectrodes to harness the energy of sunlight. In recent years, scientists have already achieved significant improvements in photoelectrodes, which can even catalytically accelerate the desired reactions – albeit only on a laboratory scale. However, when scaled up, efficiency drops dramatically. This is due to various factors, such as the larger volumes allowing for convective flows and pH gradients, which contribute to the degradation of the electrode materials.

Analysing transport processes 

‘In order to scale up, we need a better understanding of how ions and dissolved gases move within the electrolyte during these processes. To this end, we have developed several visualisation techniques at HZB to map these processes,’ explains Professor Roel van de Krol.

Surprising new insights

By 2D fluorescence imaging, it is possible to track the local pH levels and how they change over time; also the concentration of dissolved oxygen gas can be analysed by this technique. The movement of individual particles in the electrolyte can be determined using particle image velocimetry (PIV).

Both methods have now provided new insights. The experiments showed that a continuously flowing electrolyte in a pH-neutral electrolyte solution is not enough to prevent the formation of large pH gradients. ‘That surprised us,’ says van de Krol. ‘To avoid such gradients, we also had to increase the concentration of buffer ions.’

Experiment remains gold standard

Furthermore, the experimental results showed that the large pH gradients do not form at the surfaces, but rather within the volume. This was an unexpected finding, as computer simulations by other teams had predicted that such gradients would occur very close to surfaces. ‘This shows that computer simulations are not (yet) capable of truly capturing all physical relationships; the experiment remains the gold standard,’ van de Krol emphasises.

Outlook on upscaling

The work was carried out by Dr Feng Liang at HZB, who has since taken up a professorship in China. Co-author Dr Fatwa Abdi had established this field of research at HZB and is now conducting research at City University of Hong Kong.

These findings are valuable for driving forward the upscaling of efficient PEC electrolysers capable of producing green hydrogen on a large scale.

arö

  • Copy link

You might also be interested in

  • Marcel Risch has been appointed Professor at the Freie Universität Berlin
    News
    17.09.2026
    Marcel Risch has been appointed Professor at the Freie Universität Berlin
    Marcel Risch was appointed to a W2-S professorship in the Department of Physics at Freie Universität Berlin in August 2026. His research group has been transformed into the department 'Mechanisms of Sustainable Electrocatalysis'. Risch investigates the fundamental mechanisms of electrocatalytic reactions and, on this basis, develops knowledge- and data-driven strategies to improve electrocatalysts for the sustainable production of hydrogen, fuels and chemicals.
  • New technique could make MRI more precise
    Science Highlight
    17.09.2026
    New technique could make MRI more precise
    A team of researchers at the University of Stuttgart and HZB has developed a new method that could make MRI even more precise by eliminating “dead time,” a key limiting factor in the measurement process, thereby enabling the detection of signals that are lost using conventional methods. This method opens up new possibilities for medical diagnostics and non-destructive materials testing. The research team presents the new approach in Science Advances. 
  • BESSY II: High-resolution insights into individual biomolecules and catalysts
    Science Highlight
    15.09.2026
    BESSY II: High-resolution insights into individual biomolecules and catalysts
    Very small biological samples and even individual biomolecules can now be examined under near-physiological conditions with high confidence at the BESSY II infrared beamline with a newly validated and improved technique: The nanoscale infrared spectroscopy (s-SNOM) with ultra-thin silicon-based membranes. An international team demonstrated after an initial proof of concept, that high-resolution (a few tens of nanometres) nano-IR measurements reliably match expected far-field IR spectra in an aqueous environment. This methodological advance provides a solid foundation for studying biomaterials or observing catalytic processes in a liquid environment.