PermaC heals Arctic landscapes by preventing frozen permafrost from further thawing, keeping carbon in the ground and infrastructure intact.
Across the Arctic, ground that has remained frozen for thousands of years—permafrost—holds an enormous store of carbon. Much of this carbon accumulated during the Pleistocene, when plants absorbed carbon dioxide from the atmosphere, died, and became buried in frozen soils before they could fully decompose. Over thousands of years, this process locked organic carbon into the ground. Today, permafrost contains roughly twice as much carbon as the atmosphere.
As the Arctic warms, permafrost thaws and this ancient organic matter becomes available to microbes, which break it down and release carbon dioxide and methane. These are warming-induced emissions: greenhouse gas emissions triggered by warming that would otherwise have remained locked in frozen ground. The additional emissions cause further warming, which drives further thaw, creating a reinforcing climate feedback. Protecting permafrost carbon can help prevent an already vast natural carbon store from becoming an additional source of greenhouse gas emissions.
Organic carbon stored in northern permafrost soils
Arctic warming relative to the global average
Emitter, if permafrost landscapes were counted as a country


Thawing is destroying permafrost lands. Studies show that keeping carbon buried prevents carbon from becoming greenhouse gas emissions (Liu et al., Earth’s Future, 2024). Yet thaw can trigger severe erosion and form retrogressive thaw slumps: features that grow deeper and farther into permafrost each summer, exposing previously frozen carbon. PermaC targets these areas where thaw is most acute, damaging, and addressable.
Compared with the vast extent of the Arctic, individual thaw slumps are manageable in scale. PermaC combines existing and modified techniques to stabilize them, protect the underlying permafrost, and support landscape recovery. Our approach is co-created with Indigenous and institutional knowledge holders, bringing generations of land-based knowledge together with engineering, climate science, and permafrost research to identify carbon-rich areas and determine how best to intervene.
Thaw slumps are catastrophic local thaw sites in the permafrost, sometimes called sinkholes.
Warm conditions and solar forcing from 24-hour sunshine cause most thaw slumps to grow rapidly in size each summer.
Thaw and erosion unlock deeper carbon that has been frozen for thousands of years.
We prevent thaw and carbon mobilization by keeping frozen carbon locked in the ground and enabling thawed ground to refreeze.
Permafrost thaw can rapidly transform Arctic landscapes, disrupting soils, vegetation, waterways, and ecosystems. The last step in PermaC's solution is to revegetate the landscape so it is indistinguishable from the unthawed permafrost.
Arctic communities depend on the land for travel, harvesting, hunting, and connections between communities and generations. Our solution provides an approach to protect infrastructure and make communities resilient to climate change.
The purpose of the Green BlanketTM (patent pending) is to control erosion, shade and insulate, and reestablish local vegetation. The Blanket consists entirely of biodegradable materials, so after a few years it completely vanishes and is replaced long-term by the re-established local vegetation. The deployed Blanket consists of a unique combination of existing and modified techniques and materials, including erosion control fabrics adapted from the erosion control field for use in the Arctic. The final top layer of the blanket is revegetation, using a combination of seeds and cuttings selected using local knowledge to provide long-term erosion control and insulation.

The Green Blanket has been deployed on actively thawing permafrost in the Northwest Territories. Field testing has demonstrated that the system can be installed at scale in challenging Arctic conditions and can stabilize exposed ground, manage surface water and erosion, and support vegetation establishment.
We measure performance against untreated areas (control) versus blanketed area (experiment) using repeat drone surveys, LiDAR, GPS measurements, ground temperature and soil moisture sensors and field observations. These measurements allow us to track changes in surface stability and the rate at which the thawing landscape retreats. Early field results demonstrate that the intervention is working as intended; continued monitoring will quantify its performance over time and across different permafrost conditions.
Thawing permafrost can fundamentally change the landscape and its function. Caribou and animals avoid the dangerous scar area. Slumps send large volumes of sediment into rivers and streams, altering aquatic habitat and affecting fish. Stabilizing these landscapes helps protect waterways, fish habitat, and the broader ecosystems they support.
Erosion can transport sediment, heavy metals, pathogens, nutrients, and previously frozen material into Arctic waterways. By keeping soil in place, the Green Blanket helps reduce this input and protect downstream water quality.
Stabilizing vulnerable landscapes can reduce erosion and ground loss, helping protect the infrastructure Arctic communities and industries depend on.
PermaC works with Indigenous Knowledge holders to co-create how projects are designed, deployed, and monitored.


The evidence clearly shows that active thaw slumps will inevitably release emissions each year. Unless prevented on the ground by PermaC, funded by carbon credit sales.
The carbon credit market provides an opportunity to solve a problem that is inevitable and catastrophic.
Permafrost thaw is becoming a major infrastructure challenge across the North. Alaska projects up to $50B USD in cost by 2050 due to permafrost degradation, while the Northwest Territories is investing in new highways and other critical infrastructure across permafrost terrain.
As the Arctic warms, protecting the frozen ground will be essential for national security and Arctic sovereignty.

A computational fluid and thermodynamics modeler of emerging permafrost hazards. NSF EAR and GRFP Fellow, Stanford Lieberman Fellow, Tundra Early Career Fellow and NASA Astronaut Finalist.

Experienced business leader, has founded four companies, and as a senior exec in a large company, has led M&A and managed a division with more than 700 employees at MDA Space. CSA Astronaut Finalist.

A four-term Chief of the Teetl'it Gwich'in Nation, signatory of the Gwich'in Land Claims Agreement in 1992, and Founder of Virtual Gwich'in, a visual recording of Indigenous Knowledge.




