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Methane-eating bacteria in rivers won’t save us from climate change

Researchers find that methane oxidation in African and European rivers is insufficient to offset the expected rise in methane emissions due to global warming and nitrate pollution. The natural filter, more active in African rivers, remains diminished by human perturbations and invasive species.

SourceUniversity of Liège·JournalScience Advances·DateJul 17, 2026

Associate professor Guo-Ming Weng’s group published a research article on simultaneous methane conversion and hydrogen production in Science Bulletin

Researchers developed a NiO/Ni heterostructure electrocatalyst that enhances methane conversion and hydrogen production. The catalyst achieved high liquid product formation rates and remarkable Faradaic efficiencies. In situ characterization revealed the reaction mechanism, identifying key active species and promoting efficient electro...

SourceScience China Press·JournalScience Bulletin·DateAug 11, 2025

Isotopic transient study elucidates reaction rate enhancement by microwave heating in dry reforming of methane

This study uses Steady-State Isotopic Transient Kinetic Analysis to investigate the effects of microwave heating on Dry Reforming of Methane. The results show that microwave activation induces the formation of reactive coke, enhancing the reaction rate and reducing surface intermediate concentrations.

SourceIndustrial Chemistry & Materials·JournalIndustrial Chemistry and Materials·TypeExperimental study·DateJul 14, 2025
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Bacteria in lakes fight climate change

Researchers discovered that certain bacteria can utilize methane to grow and generate energy, preventing its release into the atmosphere. These microorganisms, known as methanotrophs, are essential for controlling methane emissions and regulating the global climate.

SourceMax Planck Institute for Marine Microbiology·JournalNature Communications·DateAug 12, 2024

Rising temperatures alter ‘missing link’ of microbial processes, putting northern peatlands at risk

Climate change is expected to impact northern peatlands, a key carbon storage ecosystem. A recent study found that rising temperatures and increased carbon dioxide levels can disrupt the delicate balance between nitrogen fixation and methane oxidation, leading to unpredictable outcomes.

SourceGeorgia Institute of Technology·JournalGlobal Change Biology·TypeObservational study·DateApr 3, 2023

How climate change affects microbial life below the seafloor

Scientists analyzed sediments from Peru to track changes in the deep biosphere's microbial ecosystem under the seafloor. The study reveals that this system is surprisingly dynamic and responds quickly to climate change, with the methane oxidation front migrating rapidly up or down due to changes in oceanographic conditions.

SourceMax-Planck-Gesellschaft·JournalProceedings of the National Academy of Sciences·DateOct 22, 2013