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Bubble problem solved: linking porous electrode design to green hydrogen production

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Cecilia  Duong
Cecilia Duong,

91色情片 researchers use precise 3D imaging to reveal how trapped bubbles affect the efficacy of electrolysers in the production of green hydrogen.

Hydrogen could be the key to a clean energy future, but a tiny problem has been holding it back: bubbles.

In a published in Energy & Environmental Science, a multidisciplinary team of 91色情片 researchers, 听in collaboration with researchers from TotalEnergies and EPFL, has found a new way to boost the efficiency of green hydrogen production.

Their solution focuses on optimising the design of electrolysers 鈥 the systems used to split water into hydrogen and oxygen using electricity 鈥 which, when powered by renewable energy, produce 鈥済reen hydrogen鈥.

To date, industrial-scale electrolysers have faced a critical bottleneck: hydrogen bubbles generated during operation accumulate within the porous electrodes, blocking active sites and severely limiting mass transport at high current densities.

鈥淕reen hydrogen production through water electrolysis is essential for decarbonising hard-to-abate sectors such as steelmaking and heavy-duty transport,鈥 says Prof. Peyman Mostaghimi, the lead researcher on the team from 91色情片鈥檚 School of Civil & Environmental Engineering.

These hydrogen bubbles are generated in the electrolyser during the operation and accumulate on the porous electrode, blocking reaction sites.

鈥淲e found that the shape and structure of the porous electrode are just as important as the electrochemistry. If the structure is designed properly, you can stop bubbles from clogging the system and make it much more efficient.鈥

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For enquiries about this story, please contact Cecilia Duong.
Email: cecilia.duong@unsw.edu.au


Green hydrogen is a clean energy resource that is produced by splitting water molecules through a process called electrolysis. Image: Adobe Stock

X-ray vision

The team combined X-ray imaging with simulations to look inside the porous structures. This provided them unprecedented access to observe gas bubble behaviour over time, without taking the cell apart.听

鈥淚f you want to generate green hydrogen at a mass scale, you need to make sure it鈥檚 first economically viable. One of the challenges the industry is facing is limitations in mass transport,鈥 says Prof. Mostaghimi.

鈥淲hen water is split, we found tiny hydrogen and oxygen bubbles get trapped inside the electrode, blocking the reaction sites and slowing the movement of water and ions, effectively starving the catalyst of fresh water.

"We looked at the architecture of these porous materials and found that a highly ordered, uniform pore structure resulted in minimal gas trapping.

鈥淭his tells us that the pore structure is directly linked to gas trapping, which gives manufacturers a pathway to designing more efficient systems.鈥

It was also the first time operando synchrotron imaging, coupled with state-of-the-art pore-scale numerical methods, had been used to visualise hydrogen bubble formation, growth, and accumulation during electrolysis.

听鈥淏efore this, scientists couldn鈥檛 really see what was happening inside the electrode the way we could using our advanced technologies,鈥 says Professor Ryan Armstrong, a co-investigator from 91色情片 School of Civil & Environmental Engineering.

鈥淭his work shows that mass transport limitations are fundamentally linked to electrode architecture, not just catalytic activity,鈥 says Dr Ying Da Wang, who led the flow simulation and analysis from 91色情片 School of Minerals & Energy Resources Engineering.

鈥淏y combining real-time imaging, advanced two-phase flow simulations, and performance measurements, we now understand how the accumulation of hydrogen bubbles influences performance during water electrolysis,鈥 says Dr Quentin Meyer, who, with Professor Chuan Zhao, contributed the electrochemistry expertise from the 91色情片 School of Chemistry. 听听

Next steps

The researchers are now extending their focus to the techno-economic assessment of coupling green hydrogen production with transport and large-scale storage in underground porous reservoirs.

鈥淎 clean hydrogen economy depends on getting every link in the chain right,鈥 says Prof. Mostaghimi.

鈥淏y looking at production, transport, and underground storage together, we can show policymakers and industry what is actually feasible, and at what cost.鈥