Active Clean Energy Climate, Earth & Environment

Greenhouse Gas Removal by Accelerated Peat Formation

In plain English

AI plain-English summary

Britain’s degraded peatlands are being turned back into carbon-capturing machines, deliberately re-engineered to lock away CO₂ for millennia rather than leak it into the atmosphere. This matters because peatlands store more carbon than any other land ecosystem on Earth, yet centuries of drainage, farming and extraction have turned two-thirds of the UK’s 2.3 million hectares of peat from a carbon sink into a carbon source. The project flips that damage into an opportunity: instead of merely stopping emissions, it aims to actively pull CO₂ out of the air by recreating the waterlogged, oxygen-poor conditions that cause peat to form. At the same time, the team will work to suppress the methane and nitrous oxide that can undermine those gains, test whether adding biomass or biochar can accelerate carbon accumulation, and develop farming systems that make peatland restoration profitable rather than a cost. If it works, the UK’s degraded peatlands could become a permanent, self-sustaining carbon store that helps the country reach net-zero emissions by 2050. The impact would be invisible to most people—buried in wet soil beneath moorland and fen—but it would quietly underpin national climate targets, agricultural policy, and the long-term health of water systems and biodiversity that depend on healthy peat.

View original technical description
Peatlands store more carbon than any other terrestrial ecosystem, both in the UK and globally. As a result of human disturbance they are rapidly losing this carbon to the atmosphere, contributing significantly to global greenhouse gas emissions and climate change. We propose to turn this problem into a solution, by re-establishing and augmenting the unique natural capacity of peatlands to remove CO2 from the atmosphere and to store it securely for millennia. We will do this by working with natural processes to recreate, and where possible enhance, the environmental conditions that lead to peat formation, in both lowland and upland Britain. At the same time, we will optimise conditions to avoid emissions of methane and nitrous oxide that could offset the benefits of CO2 removal; develop innovative cropping and management systems to augment rates of CO2 uptake; evaluate whether we can further increase peat carbon accumulation through the formation and addition of biomass and biochar; and develop new economic models to support greenhouse gas removal by peatlands as part of profitable and sustainable farming and land management systems. Implementation of these new approaches to the 2.3 million hectares of degraded upland and lowland peat in the UK has the potential to remove significant quantities of greenhouse gases from the atmosphere, to secure carbon securely and permanently within a productive, biodiverse and self-sustaining ecosystem, and thereby to help the UK to achieve its ambition of having net zero greenhouse gas emissions by 2050.

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Researchers

Christopher Evans (Principal Investigator)Davey Jones (Co-Investigator)David Chadwick (Co-Investigator)Fred Worrall (Co-Investigator)Iain Donnison (Co-Investigator)Mariecia Fraser (Co-Investigator)Mark Reed (Co-Investigator)Martin Evans (Co-Investigator)Mirjam Roeder (Co-Investigator)Niall McNamara (Co-Investigator)Richard Lindsay (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Sustainable management of UK lowland peatlands
Unveiling the Secrets of Peatlands for Climate Change Mtigation
Quantifying the impact of restoration on peatland aquatic organic matter, microbial communities and greenhouse gas emissions
Managing Peatlands as Carbon Stores
Grass half full? Adapting the hydrological management of grazed lowland peatlands to balance climate change mitigation with agriculture

Original classification

Research Grant

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