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Trend

Developing and implementing large-scale carbon capture, utilization, and storage (CCUS) technologies

Remove significant amounts of CO2 from industrial emissions and the atmosphere, helping to mitigate climate change and potentially creating valuable carbon-based products.

101-trends101-trend-056
Publish Date2025-05-29
Updated Date2026-09-18
Horizonnow
TimeframeAlready deployable or scaling now
Confidencehigh

The next generation of infrastructure drives economic growth through purposeful design.

— Jim Carroll

The opportunity

Remove significant amounts of CO2 from industrial emissions and the atmosphere, helping to mitigate climate change and potentially creating valuable carbon-based products.

From “Decoding Tomorrow: 30 Megatrends - #9 Climate-Positive Technologies: “The next generation of infrastructure will drive economic growth through purposeful design.”” (July 2025)

Direct Air Capture: Chemical capture of CO2 from ambient air, followed by storage or utilization.

Algae-Based Carbon Capture: Algae absorb CO2 via photosynthesis to produce biomass and byproducts.

How about “Carbon-Negative Concrete?” These technologies transform concrete from an environmental liability into a tool for carbon sequestration through CO2 mineralization. Companies like CarbonCure inject captured CO2 into concrete mixes during production. The CO2 forms calcium carbonate minerals that become permanently embedded within the concrete, enhancing its strength. This offers economic value through the generation and sale of high-quality carbon credits, reduced cement usage due to enhanced strength, and the sale of carbon-negative aggregates, all contributing to circular economy benefits from waste concrete utilization.

From “Megatrends One Year Later – #9: Climate-Positive Technologies – What I Predicted, and What’s Actually Happening” (August 2026)

What exactly does “climate-positive” mean? It transcends the idea of net-zero carbon emissions by actively generating environmental benefits, specifically by extracting additional carbon dioxide from the atmosphere.

The honest story is uneven progress across the six technologies I named, not one clean number. Carbon-negative concrete is the standout: CarbonCure’s CO2-mineralization systems now run in hundreds of batch plants across two dozen-plus countries, have gone into more than 10 million truckloads of concrete, and have permanently locked away close to 750,000 tonnes of CO2 — quiet, boring, and actually scaling.

Direct air capture is the cautionary tale in the same trend. Climeworks’ flagship Mammoth plant in Iceland captured only about 750 tonnes in its first ten months against a 36,000-tonne nameplate — roughly 2% utilization — though its next-generation tech claims to halve both cost and energy use, and the wider sector now counts 84 DAC plants operating worldwide. Enhanced rock weathering is moving faster: Lithos Carbon’s basalt-on-cropland approach delivered over 5,000 certified tonnes of removal in a single batch, seven times any prior delivery, with Climeworks now buying in as a partner.

From “The BIG Future: New Materials Science” (February 2023)

Consider cement - it’s one of the largest generators of dangerous carbon dioxide in the atmosphere - but there are research programs underway that try to reduce that problem through the use of other materials: “Increase of carbon dioxide in the environment has been associated with the onset of global warming, the greenhouse effect. Portland cement manufacture is a very large contributor to the carbon dioxide emissions with approximately 0.9 ton of carbon dioxide emitted for every ton of cement made. Concrete is second only to water as the most consumed substance in the world (hundreds of millions of tons worldwide) and Portland cement, with its huge carbon footprint, is the principal ingredient in concrete.

“The chemical process of making Portland cement is the reaction of limestone (calcium carbonate) with clay (hydrated alumino-silicate) at high temperatures. This elevated chemical reaction, called calcination, releases carbon dioxide to the atmosphere at a very high rate, for example, about 60% of the emissions from a cement plant. The high temperatures used for calcination reactions require combustion of carbon based fuels and are responsible for about 40% of the emissions of the cement plant.

Nanotubes. Why are they important? Because they have two properties that are hard for most materials to achieve: Most of the existing energy storage and structural materials have only one property between high strength or high energy storage capacity. By using carbon nanotube fiber that is light, strong, and has excellent electrical conductivity, the material developed by the two research teams has both properties simultaneously.


Read the full pieces on jimcarroll.com:

Decoding Tomorrow: 30 Megatrends - #9 Climate-Positive Technologies: “The next generation of infrastructure will drive economic growth through purposeful design.”
Megatrends One Year Later – #9: Climate-Positive Technologies – What I Predicted, and What’s Actually Happening
The BIG Future: New Materials Science

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