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Big Tech’s Tiny Fix: MIT’s Nanotech Breakthrough Supercharges Carbon Capture

A team of engineers at MIT has developed a new type of nanofiltration membrane that could make carbon capture and storage (CCS) systems six times more efficient. Their innovation addresses one of the biggest technical challenges in carbon capture: when the ions used in the process mix together, they create water and reduce efficiency.

Current CCS systems rely on two key chemical reactions. The first pulls diluted carbon dioxide (CO₂) from the air; the second releases that CO₂ in pure form for long-term storage. But when the positively and negatively charged ions used in both steps combine, they produce water. This not only weakens the chemical reactions but also wastes energy.

MIT’s new membranes act like tiny barriers that separate the ions. This prevents them from reacting with each other too early. As a result, the CCS process uses less energy, improves output, and could cut costs by up to 30%.

CCS Is Getting a Boost from Innovation

This breakthrough comes at a time when CCS technology is growing quickly. The International Energy Agency (IEA) said global CO₂ capture and storage capacity hit over 50 million metric tons in early 2025. The IEA expects this number to climb to 430 million metric tons by 2030.

Announced and operational CCS by iEA

The MIT team’s membranes could help reach those goals faster. Making carbon capture cheaper and more efficient makes it more appealing to industries that emit a lot of CO₂.

Nano But Mighty: What Makes the Membrane Different

MIT engineers offer a key carbon capture innovation: nanofiltration. This method uses membranes with tiny holes. These holes can filter out ions while allowing other molecules to pass. These filters keep the key ingredients for CCS from mixing too early, which prevents them from forming water and weakening the reaction.

Before this technology, many CCS systems had to deal with a trade-off between reaction speed and purity. The faster the process ran, the more the ions would combine in unwanted ways. That led to higher energy use and lower CO₂ capture rates.

With the new filter, reactions can run faster without losing performance. That could make CCS more practical for real-world use—not just in research labs, but in factories, power plants, and even ships or mobile units.

MIT nanofiltration CCS
Source: MIT study by Rufer, S. et al., 2025

The better process helps smaller companies and countries use CCS. This is great for those who didn’t have the resources before. If used widely, this membrane could ease a big hurdle in carbon removal projects around the world.

As the IEA predicts, major CCUS projects will launch this year, including the world’s largest cement capture site in Norway and the biggest DAC plant in the U.S. North America and Europe still dominate, holding 80% of the projected 2030 capacity.

However, China and the Middle East are rising players, with over 15 Mt of capacity under construction—more than Europe. Supply chain challenges are emerging as demand for custom-built equipment grows. This creates opportunities for countries and companies that can scale up mass manufacturing for capture technologies.

Major tech companies are especially interested in supporting CCS growth.

Why Big Tech Cares About Carbon Capture

Big Tech companies are now key players in the fight against climate change. They want to protect the environment and meet their own sustainability goals.

As companies create more energy-demanding data centers for AI, cloud services, and digital storage, their carbon footprints are increasing quickly, alongside their growth, as shown below. Rising energy use leads companies like Microsoft, Apple, and Google (the hyperscalers) to seek reliable ways to balance their emissions. Carbon capture and storage offers one of the most promising tools for this.

capex estimates for major tech companies
Source: Sherwood

CCS is different from traditional offsets like tree planting. It removes carbon dioxide from the air and stores it underground or in stable materials. This is key for Big Tech. Their climate goals often need removal-based offsets. These offsets actively take CO2 out of the air. They can’t just rely on avoidance methods that cut future emissions.

According to expert analysis, tech firms rely on carbon removal offsets more than other industries, such as oil, gas, or aviation. Their growing reliance on carbon removal aligns with the surge in demand for new CCS technologies.

MIT’s carbon capture nanofiltration membranes are a great innovation. They could make CCS six times more efficient and cut costs by 30%. This is exactly what companies need.

The team’s analysis revealed that current systems cost a minimum of $600 per ton of carbon dioxide captured. However, by adding the nanofiltration component, the cost drops to around $450 per ton.

Simon Rufer, one of the authors of the study, noted: 

“People are buying carbon credits at a cost of over $500 per ton. So, at this cost we’re projecting, it is already commercially viable in that there are some buyers who are willing to pay that price. It’s just a question of how widespread we can make it.”

As pressure mounts from investors, customers, and regulators, Big Tech needs scalable, science-backed solutions. That’s why they’re not only buying carbon credits. They’re also investing in science and engineering for the next generation of carbon removal.

Carbon Markets Are Booming, Driving CCS Growth

The carbon market is growing fast. Here, companies buy and sell credits to offset emissions. Carbon removal credits are key to this growth.

In 2024, the volume of newly contracted carbon removal credits increased by 74%, according to Bloomberg. These credits let companies reduce their emissions. They do this by funding projects that capture or remove CO2 from the air. This includes nature-based projects like reforestation as well as advanced carbon capture and storage systems.

The market is expected to further grow in 2025, driven largely by demand from major corporations. Microsoft made up almost two-thirds of new carbon removal contracts last year. That’s about 5.1 million credits, followed by Google. These figures show how seriously companies are taking climate commitments. Many aim for net-zero emissions within the next two decades.

CDR Top10 Purchasers 2024

CCS technologies, like those from MIT, are boosting interest. They help meet demand by providing high-quality removal solutions.

In the coming years, carbon markets will likely become even more important. They offer a flexible way for companies to meet climate goals while supporting innovation in emissions reduction. 

Carbon capture is no longer just a scientific idea—it’s becoming a major industry. And innovations like MIT’s carbon capture nanofilters could help it scale faster than expected. As countries and companies face pressure to reach net-zero emissions, CCS offers a critical solution for sectors that can’t easily go fully green.

The post MIT’s Nanotech Breakthrough Supercharges Carbon Capture And May Cut Costs by 30% appeared first on Carbon Credits.

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Carbon Footprint

Insetting vs Offsetting: Which Actually Counts Toward Your Scope 3 Targets

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The accounting differences that decide whether your nature investment shows up in inventory, in BVCM, or nowhere at all.

The question reaches a procurement team about three weeks before the next sustainability committee meeting. Someone has read about insetting. Someone else has just signed off on an offset purchase. The CSO wants to know if the two are interchangeable. The answer is no, and the GHG Protocol Land Sector and Removals Standard is the reason why.

This article walks through what each term means at audit-grade specificity, what the standards actually say about how each gets counted, and how to decide which tool fits which target. The insetting vs offsetting question is one of the most-searched in corporate climate strategy, and one of the most poorly answered. By the end of this piece, you should be able to brief a committee on the difference without notes.

The two definitions, in plain English

Offsetting means buying carbon credits generated outside your value chain and retiring them against your residual emissions. The reduction happens somewhere else, financed by you, and the credit is the receipt.

Insetting means investing in emission reductions or removals inside your own value chain, typically with suppliers, where the reduction is directly linked to the products and services you buy. The reduction happens inside the boundary of your Scope 3 inventory, and the accounting treatment is fundamentally different.

The shorthand from the University of Oxford’s Nature-based Insetting Initiative is useful: insetting is what you do with the supply chain you have; offsetting is what you do with the supply chain you do not have.

What the GHG Protocol Land Sector Standard actually says

The GHG Protocol Land Sector and Removals Standard, finalised in 2024 after a multi-year pilot, sets the rules for how land-based emission reductions and removals enter corporate inventories. The Standard distinguishes between inventory accounting (Scope 1, 2, and 3) and project or intervention accounting (a separate methodology for crediting).

For insetting, the practical implication is that supplier-level interventions, when properly measured and attributed, can reduce your Scope 3 category 1 (purchased goods and services) emissions in your inventory. The reduction is not a credit retired against the inventory; it is a lower inventory number, period.

For offsetting, the credit is retired separately. It can be reported as a contribution toward a net-zero claim under the SBTi Beyond Value Chain Mitigation framework or as part of a VCMI Carbon Integrity claim, but it does not lower the inventory number.

A practical consequence: if your Science Based Target requires a 50% absolute reduction in Scope 3 emissions by 2030, insetting moves you toward the target. Offsetting does not. This single point of difference reshapes the procurement decision.

When insetting counts toward Scope 3 (and when it does not)

Insetting counts toward Scope 3 only when several conditions are met:

  • The intervention must occur with an entity in your value chain.
  • The emissions reduction or removal must be measured against a defensible baseline.
  • The reduction must be attributed to your share of that supplier’s output, not double-counted with other buyers.
  • It must follow the inventory accounting rules in the GHG Protocol Land Sector Standard, not the project accounting rules used to generate credits.

The most common failure mode is double counting. If your supplier sells the same reduction as a credit on the voluntary market and also reports it to you as a Scope 3 reduction, the math breaks. The Standard requires you to address this risk, typically by purchasing and retiring the supplier-issued credit as part of your inventory or by contractual provisions that prevent the supplier from selling the reduction twice.

When insetting does not count toward Scope 3: when the intervention sits with a supplier you do not buy from, when the baseline is not defensible, when the attribution is unclear, or when the documentation does not survive audit. Those cases default to Beyond Value Chain Mitigation, which is still useful but operates on a different ledger.

The procurement and supplier engagement question

Insetting is harder than offsetting. That is the unfashionable truth most buyers eventually confront. Offsetting is a transaction; insetting is a relationship.

To run an insetting program, you need supplier mapping precise enough to know which farms or facilities sit at which Scope 3 boundary. You need an engagement model that gets suppliers to participate, which usually requires multi-year commitments and shared economics. You need an MRV architecture that measures the right things and produces audit-ready documentation. And you need a contractual structure that prevents double counting and protects both sides.

The trade-off you receive in return is significant. Reductions count against your inventory rather than your residual. Supplier relationships deepen, which protects sourcing continuity. Yield and quality improvements often follow regenerative interventions, which reduces your input cost over time. And the regulatory file, under CSRD, CSDDD, EUDR, and the SBTi FLAG Guidance, is materially stronger.

Choosing the right tool for the right target

A practical decision rule. If your target is a science-based Scope 3 reduction and you operate in a FLAG sector or source FLAG commodities, insetting is the structurally correct tool. If your target is a net-zero claim that includes neutralising hard-to-abate residual emissions outside your value chain, BVCM via high-integrity offsets is the structurally correct tool. Most companies with material Scope 3 exposure need both, in different proportions, sequenced over time.

The sequencing matters. Insetting takes longer to stand up but produces a permanent reduction in the inventory. Offsetting can be transacted faster but does not change the inventory and now sits under tighter claim restrictions. Treat them as complementary tools with different jobs, not as substitutes. The Accountability Framework Initiative and the IUCN Global Standard for Nature-based Solutions both provide useful guardrails for the insetting side, with biodiversity, human rights, and benefit-sharing requirements that go beyond carbon math.

If you are mapping a Scope 3 reduction roadmap and need to scope which interventions count toward your inventory versus which sit in Beyond Value Chain Mitigation, the carbon and sustainability experts at Carbon Credit Capital can help you structure a nature-based supply chain investment program that fits your FLAG exposure, your target architecture, and your audit horizon. Schedule a consultation.

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Carbon Footprint

Net zero needs nature: a carbon credit guide

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Net zero is often described as a balancing act: cut what you can, account for the rest, and reach zero on the ledger. That framing is useful, but it leaves something out. It treats every tonne of carbon as interchangeable and every route to zero as equally sound, while the science tells a more specific story.

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Carbon Footprint

Deforestation in Malawi: causes and solutions

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Malawi has lost a striking share of its forests over the past three decades. Woodlands that once covered well over a third of the country now cover less than a quarter, and the pressure on what remains is increasing. Behind those figures sit two practical questions: what is driving the loss, and what reverses it?

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