This Government Contract opportunity from Department Of Energy was posted on July 29, 2026. The submission period has ended. Browse the details below for market research, or find similar active opportunities.
Technology Licensing Opportunity: Integrated Electrochemical System for Carbon Capture and Hydrogen Production
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The contract outlines a technology licensing opportunity for a novel integrated electrochemical system designed to capture atmospheric CO₂ and simultaneously produce hydrogen in an energy-efficient, modular solution. The innovation addresses key challenges faced by current carbon capture methods, such as high energy consumption, bulky infrastructure, and inefficiency in capturing CO₂ at low ambient concentrations. The system combines a Carbonate-Composite Membrane Reactor (CCMR) with a Protonic Ceramic Electrolyzer (PCE) to enable direct air capture while generating electricity and hydrogen. By integrating these components with a closed water loop and thermal balancing, the system minimizes energy losses, eliminates solvent regeneration needs, and achieves net-zero water consumption, offering a simplified and scalable approach to carbon capture and hydrogen production. This technology is suitable for various market applications, including mitigating global CO₂ emissions through direct air capture, industrial CO₂ utilization, mobile and distributed carbon capture for transportation emissions, and point-source capture from industrial facilities. Operating at intermediate temperatures allows for efficient integration with waste heat sources, enhancing its versatility and sustainability. The Department of Energy, through the Battelle Energy Alliance in Idaho Falls, is soliciting responses to this licensing opportunity by June 1, 2026, inviting interested parties to explore deployment of this innovative technology that promises reductions in carbon emissions alongside renewable hydrogen production.
General Info
Agency
NAICS
Place of Performance
Idaho Falls, ID, 83401, USASet-Aside
Documents
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Timeline
Submission Closed
Organization & Contact Information
Full Description
Integrated Electrochemical System for Carbon Capture and Hydrogen Production
A Modular, Energy-Efficient Solution for Reducing Atmospheric CO₂
The Challenge
Current carbon capture technologies face significant hurdles in addressing both distributed CO₂ emissions and direct air capture (DAC). Current solutions are:
- Energy Intensive: Traditional methods rely on chemical solvents or solid adsorbents that demand high heat, steam, and electricity for regeneration.
- Infrastructure Heavy: Large absorption and desorption towers increase capital costs and system complexity.
- Inefficient DAC for Low CO₂ Concentrations: Capturing CO₂ from ambient air (400 ppm) remains technologically and economically challenging.
These limitations impede scalability and economic viability, especially as global CO₂ emissions from distributed sources like transport remain a critical challenge.
How It Works
The proposed technology integrates a Carbonate-Composite Membrane Reactor (CCMR) with a Protonic Ceramic Electrolyzer (PCE) to enable efficient carbon capture, hydrogen production, and energy generation:
- Carbonate-Composite Membrane Reactor (CCMR): Captures CO₂ directly from ambient air while generating electricity and steam.
- Protonic Ceramic Electrolyzer (PCE): Produces renewable hydrogen using the steam and electricity generated by the CCMR.
- Thermal Balance: Couples the exothermic CCMR and endothermic PCE to create a thermally uniform and energy-efficient system.
- Closed Water Loop: Water produced in the CCMR is used for hydrogen production in the PCE, ensuring net-zero water consumption.
This hybrid approach minimizes energy loss, reduces auxiliary power demand, and eliminates the need for traditional solvent regeneration processes.
Key Advantages
- Energy Efficiency: Generates electricity and reuses heat within the system, lowering overall energy requirements.
- Net-Zero Water Consumption: Closed-loop operation ensures sustainable water usage.
- Scalability: Modular design supports deployment as distributed DAC units or centralized stations.
- Versatility: Operates at intermediate temperatures (~600°C), enabling integration with waste heat sources and a range of applications.
- Simplified Operation: Eliminates adsorption/desorption regeneration, reducing system complexity and costs.
- Sustainable Hydrogen Production: Uses renewable H₂ to drive CO₂ capture, achieving net-zero or negative emissions.
Market Applications
- Carbon Management: Direct air capture for mitigating global CO₂ emissions.
- Industrial CO₂ Use: Captured CO₂ can be used for enhanced oil recovery, synthetic fuel production, and food/beverage carbonation.
- Distributed or Mobile Carbon Capture: Ideal for addressing emissions from transportation and other distributed sources.
- Point Source Applications: Captures CO₂ from concentrated sources, such as power plants or industrial facilities.
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