In this article, we explained subsurface carbon sequestration, the processes, the advantages of subsurface, the challenges and the risk, and the future.
Definition
Subsurface carbon sequestration includes capturing CO₂ from industrial sources and injecting it deep underground into porous physical formations. This process permanently stores CO₂, preventing its release into the atmosphere and helping mitigate climate change. Underground, CO₂ is securely stored by being trapped beneath impermeable cap rocks, dissolving into brine, and eventually mineralizing into solid forms over time
The Process of Subsurface Carbon Sequestration:
- Capture and Compression
The process begins with capturing CO2 from large industrial sources, such as power plants or cement factories. The captured gas is then compressed into a supercritical fluid—a dense, liquid-like state—which significantly reduces its volume, making it efficient for transportation and injection.
- Transportation
The highly compressed CO2 is then transported from the capture site to a suitable storage location. This is typically done using a dedicated pipeline network, though it can also be transported by ships, rail, or trucks.
- Injection and Storage (Sequestration)
The supercritical CO2 is injected deep underground (typically more than a kilometer deep) through injection wells into a carefully selected geological reservoir.
Suitable reservoirs have three key characteristics:
Porous and Permeable Rock: To hold and allow the CO2 to spread (e.g., saline aquifers or depleted oil and gas reservoirs). Impermeable Caprock: A dense, non-porous layer of rock (like shale) that acts as a seal to prevent the CO2 from migrating upward and escaping to the surface.
Sufficient Depth: To ensure the CO2 remains in its stable, dense, supercritical state. The CO2 is trapped through several mechanisms:
Structural Trapping: The CO2 is physically held in place beneath the caprock seal. Residual Trapping: Some CO2 gets trapped in the pore spaces of the reservoir rock by capillary forces.
Solubility Trapping: Over time, the CO2 dissolves into the existing formation water (brine).
Mineral Trapping: In the long term, the dissolved CO2 can react with minerals in the rock to form stable, solid carbonate minerals.
- Monitoring and Verification
Once injection begins, rigorous monitoring is carried out to ensure the CO2 remains securely trapped and to verify that it’s not leaking back into the atmosphere or contaminating groundwater
The Advantages of Subsurface Carbon Sequestration:
Climate Change Mitigation and Environmental Benefits
Greenhouse Gas Reduction: The primary and most significant advantage is the ability to remove large volumes of CO2 from industrial and power generation emissions before they enter the atmosphere. This directly addresses the main driver of anthropogenic climate change.
Decarbonization of “Hard-to-Abate” Sectors: CCS provides a vital pathway for industries that are difficult to fully decarbonize, such as cement, steel, chemicals, and fertilizer production, allowing them to significantly reduce their carbon footprint while continuing operations.
Air Quality Improvement: The process of capturing CO2
can also lead to the reduction of other harmful air pollutants (like NO x and SO x ) from power plants, leading to improved public health. Long-Term, Permanent Storage: Geological formations, particularly deep saline aquifers and depleted reservoirs, offer stable, secure, and immense storage capacity that can permanently contain CO2for thousands to millions of years, often by mineralizing it into solid rock.
Preservation of Ecosystems (Offshore): Utilizing offshore storage sites minimizes competition for land use, protecting terrestrial ecosystems, biodiversity, and valuable habitats from industrial development.
- Industrial and Economic Benefits
Enhanced Oil Recovery (EOR): In some cases, injected CO2 can be used for CO2 -EOR, which helps to recover additional oil from mature reservoirs. This provides a revenue stream that can help offset the cost of the capture and injection process.
Energy Security: CCS allows for the continued, responsible use of existing fossil fuel-based energy infrastructure (like gas power plants) while the world transitions to renewable energy, supporting a stable and secure energy supply.
New Economic Activity and Jobs: The development and deployment of Carbon Capture and Storage (CCS) technology drive economic growth and creates skilled jobs in engineering, construction, manufacturing, and operation of capture facilities, pipelines, and storage sites.
Cost-Effective Mitigation Tool: International assessments show that CCS is a crucial component of a low-carbon energy portfolio, helping to achieve global emissions reduction targets more cost-effectively than relying on a limited set of solutions alone.
Asset Repurposing: Depleted oil and gas reservoirs, which have already proven to be effective long-term traps for hydrocarbons, can be repurposed as secure CO2 storage sites, capitalizing on existing geological knowledge and infrastructure.
The Challenges and Risk of Subsurface Carbon Sequestration:
- Site Selection and Characterization
Requires detailed geological studies to ensure secure containment.
Risk of leakage if caprock integrity is compromised
- Monitoring and Verification Cost
Long-term monitoring over decades to centuries is costly but necessary.
- Public Perception and Acceptancy
Concerns about induced seismicity (earthquakes) and CO₂ leakage.
Requires transparent communication and regulatory frameworks.
- Regulatory and Legal Frameworks
Policies for liability, property rights, and monitoring must be established.
Carbon accounting and credits systems need clarity.
- Economic Viability
High upfront costs for capture, transport, and injection.
Often requires government incentives or carbon pricing to be economically feasible.
The future
. Essential for Global Decarbonization and Net-Zero Goals
Experts and major international bodies, including the International Energy Agency (IEA) and the IPCC, view large-scale CCS/SCS deployment as a necessity, not an option, for reaching mid-century net-zero emissions targets. Massive Scaling Essential: To align with net-zero scenarios, the global CO2capture capacity, which was around 45 million tons per year, must massively increase. The IEA estimates this capacity needs to expand to 1.2 gigatons annually by 2030 and to 7.6 gigatons by 2050.
Decarbonizing Hard-to-Abate Sectors: SCS is considered the most practical, and sometimes the only, solution for deep decarbonization in “hard-to-abate” industries like cement, steel, petrochemicals, and fertilizer production, where process-related CO2 emissions are inherent.
Enabling Carbon Removal: Subsurface storage is the final and permanent step for Carbon Dioxide Removal (CDR) technologies, such as Direct Air Capture with Carbon Storage (DACCS) and Bioenergy with Carbon Capture and Storage (BECCS), which are necessary to achieve net-negative emissions
Low-Carbon Energy Carriers: CCS will be critical for the production of “blue” hydrogen from natural gas, where the resulting CO2 must be permanently stored underground.
- Projected Growth and Market Expansion
The market for CCS and geological CO2 storage is entering a period of significant acceleration, often referred to as a “turning point.”
Market Growth: The overall Carbon Capture and Storage market, valued at approximately $8.6 billion in 2024, is projected to grow with a high Compound Annual Growth Rate (CAGR of 16% to reach an estimated $51.5 billion by 2034).
Project Pipeline Surge: The number of large-scale CCS facilities globally is rapidly increasing, with a strong project pipeline across North America, Europe, and Asia-Pacific.
Regional Dominance: North America and Europe currently lead the market, driven by advanced infrastructure, strong government incentives (like the US 45Q tax credit), and stringent climate policies. The Asia-Pacific region is emerging as a high-growth market fueled by industrialization.
Investment Drivers: Growth is fueled by tightening government regulations, rising carbon prices that make CCS a cost-effective solution, and increasing public-private partnerships.
- Geological Storage Trends
The subsurface formations targeted for CO2 storage are becoming more diverse and commercially organized.
Primary Storage Sites: The main geological options remain:
Deep Saline Aquifers: Vast porous rock formations filled with undrinkable salt water, offering the largest storage potential (e.g., the North Sea’s Endurance aquifer).
Depleted Oil and Gas Reservoirs: Subsurface structures with a proven capacity to safely contain fluids for millions of years. This can sometimes be combined with Enhanced Oil Recovery (EOR).
Offshore Dominance: The offshore geological storage market is projected to show a robust CAGR of 15% between 2025 and 2033, as deep-sea storage offers high capacity and security.
Cluster Development: To reduce costs and accelerate deployment, the future involves developing CCS hubs or clusters. This means multiple industrial emitters will share common CO2 transportation infrastructure (pipelines or shipping) leading to shared, large-scale storage sites.
Advanced Reservoir Characterization: Technology is rapidly improving for site selection and safety. Innovations in seismic imaging, well logging, and real-time monitoring are enhancing the feasibility and long-term security of injecting CO2 into the deep subsurface.
Conclusion
Subsurface Carbon Sequestration (SCS) is a vital climate solution that securely stores CO₂ underground, helping reduce emissions from fossil fuels and heavy industries. It’s key to achieving net-zero targets by mid-century. Despite challenges like cost and regulation, SCS is progressing rapidly through ongoing research, large-scale projects, and innovation, making it an increasingly important tool in global climate strategies.