Close Menu
geekfence.comgeekfence.com
    What's Hot

    Wilkie refers gambling concerns to anti-corruption commission

    August 13, 2026

    Lumen ready for AI traffic rush – with programmable fabric and “more fiber than anyone”

    August 13, 2026

    With a feel for physics, AI models simulate a wider range of real-world scenarios | MIT News

    August 13, 2026
    Facebook X (Twitter) Instagram
    • About Us
    • Contact Us
    Facebook Instagram
    geekfence.comgeekfence.com
    • Home
    • UK Tech News
    • AI
    • Big Data
    • Cyber Security
      • Cloud Computing
      • iOS Development
    • IoT
    • Mobile
    • Software
      • Software Development
      • Software Engineering
    • Technology
      • Green Technology
      • Nanotechnology
    • Telecom
    geekfence.comgeekfence.com
    Home»Green Technology»Scaled-up reactor converts CO₂ and renewable electricity into methane
    Green Technology

    Scaled-up reactor converts CO₂ and renewable electricity into methane

    AdminBy AdminMay 15, 2026No Comments4 Mins Read9 Views
    Facebook Twitter Pinterest LinkedIn Telegram Tumblr Email
    Scaled-up reactor converts CO₂ and renewable electricity into methane
    Share
    Facebook Twitter LinkedIn Pinterest Email



    Scaled-up reactor converts CO₂ and renewable electricity into methane
    An internal view of the reactor system (image credit: Bruce Logan).

    US researchers have developed a microbial electrosynthesis reactor system that converts carbon dioxide and renewable electricity into methane, while demonstrating that the technology can be scaled up roughly tenfold without losing efficiency — a step that could help move the long-studied approach beyond laboratory-scale systems.

    The work addresses one of the central challenges associated with renewable energy: long-duration energy storage.

    “Traditionally, large-scale, long-term storage means pumping water uphill and letting it flow back down through turbines,” said Bruce Logan, director of Penn State’s Institute of Energy and the Environment and corresponding author on the study. “If you’re talking seasonal storage, you really need to put that energy into a chemical form.”

    The system uses electricity from renewable sources such as solar and wind to split water and generate hydrogen. Methanogenic microorganisms then consume the hydrogen and combine it with carbon dioxide to produce methane — the primary component of natural gas.

    “The big picture is that we can use low-cost renewable electricity to make methane that can go into existing storage and pipeline systems,” said Logan, Evan Pugh University Professor and Kappe Professor of Environmental Engineering in Penn State’s Department of Civil and Environmental Engineering.

    Researchers said microbial electrosynthesis has historically struggled with low efficiencies and difficulties scaling up beyond small experimental devices. The new study focused on overcoming those barriers through reactor design.

    The team developed an enlarged “zero-gap” reactor configuration in which electrodes are separated only by a membrane, reducing internal electrical resistance and improving energy transfer efficiency.

    According to the researchers, the redesigned system increased electrode area by approximately tenfold while extending the flow path to nearly one foot. Despite the larger dimensions, the reactor maintained stable performance.

    “Even though we made the system much bigger, the internal resistance didn’t get worse,” Logan said. “That’s because we were able to use the hydrogen coming off the electrodes much more efficiently.”

    The reactor also uses multiple flow ports to improve the distribution of gases and liquids throughout the system, helping maintain consistent operating conditions.

    In laboratory tests conducted at 30°C, the system produced up to 6.9 litres of methane per litre of reactor volume per day. Researchers reported coulombic efficiencies above 95%, meaning most of the electrical energy supplied to the reactor was converted into methane rather than unwanted byproducts.

    Energy efficiency reached approximately 45% to 47%, which the researchers said places the system among the best-performing microbial electrosynthesis technologies reported under standard conditions.

    “We’re taking electricity and turning it into methane at an efficiency on the order of 45% to 47%,” Logan said. “Starting from carbon dioxide and electrons and upgrading that into methane — that’s pretty good.”

    The study also sheds light on the mechanism driving methane production in the reactor.

    Rather than relying on microorganisms to directly extract electrons from electrodes — a comparatively slow process — the system first generates hydrogen through water splitting. Methanogens then rapidly consume the hydrogen to produce methane.

    “We split water to make hydrogen, and the methanogens are right there to use it immediately,” Logan said. “You can think of it as a water electrolyzer, which uses electricity to split water into hydrogen and oxygen, combined with a biological system.”

    Researchers said the hydrogen-mediated approach enables higher current densities and faster methane production than earlier microbial electrosynthesis methods.

    The findings suggest the technology could eventually be integrated with renewable energy facilities to provide long-duration energy storage using existing gas infrastructure.

    “I see methane generation plants built next to solar or wind farms,” Logan said. “Instead of putting electricity onto the grid, you use it on site to produce methane and inject that into gas lines.”

    The researchers noted that commercial viability will depend heavily on access to low-cost renewable electricity, continued improvements in reactor materials and careful control of methane leakage, which could undermine climate benefits if emissions escape into the atmosphere.

    Even so, the work points toward a possible pathway for recycling carbon dioxide into a storable and transportable fuel using renewable energy.

    “We don’t need to dig methane out of the ground,” Logan said. “We can use carbon dioxide we’re already producing and turn it into something useful.”

    The study was published in the journal Water Research.



    Source link

    Share. Facebook Twitter Pinterest LinkedIn Tumblr Email

    Related Posts

    New EU packaging rules target waste and resource use

    August 13, 2026

    Why Fixture Supply Lines Matter More Than Homeowners Think

    August 12, 2026

    The impact of clean energy on household bills

    August 11, 2026

    Simplifying the sustainability certification ecosystem

    August 10, 2026

    Power Systems Have More Flexibility Plans Than Flexible Grids

    August 9, 2026

    Imperfect sorting of plastic types undermines mechanical recycling, explains Manchester study

    August 7, 2026
    Top Posts

    Understanding U-Net Architecture in Deep Learning

    November 25, 202576 Views

    The Next Paradigm in Efficient Inference Scaling – The Berkeley Artificial Intelligence Research Blog

    May 16, 202642 Views

    Is it too late to start learning AI and machine learning in my 30s or 40s?

    April 9, 202638 Views
    Don't Miss

    Wilkie refers gambling concerns to anti-corruption commission

    August 13, 2026

    Independent MP Andrew Wilkie has taken the fight over gambling reform to the National Anti-Corruption…

    Lumen ready for AI traffic rush – with programmable fabric and “more fiber than anyone”

    August 13, 2026

    With a feel for physics, AI models simulate a wider range of real-world scenarios | MIT News

    August 13, 2026

    Monitoring beyond SNMP: Turning your network into a sensor

    August 13, 2026
    Stay In Touch
    • Facebook
    • Instagram
    About Us

    At GeekFence, we are a team of tech-enthusiasts, industry watchers and content creators who believe that technology isn’t just about gadgets—it’s about how innovation transforms our lives, work and society. We’ve come together to build a place where readers, thinkers and industry insiders can converge to explore what’s next in tech.

    Our Picks

    Wilkie refers gambling concerns to anti-corruption commission

    August 13, 2026

    Lumen ready for AI traffic rush – with programmable fabric and “more fiber than anyone”

    August 13, 2026

    Subscribe to Updates

    Please enable JavaScript in your browser to complete this form.
    Loading
    • About Us
    • Contact Us
    • Disclaimer
    • Privacy Policy
    • Terms and Conditions
    © 2026 Geekfence.All Rigt Reserved.

    Type above and press Enter to search. Press Esc to cancel.