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Contract Record
Notice ID: 46f440fea8504a3c9190bd1677d4bc61
Special Notice Posted 2026-03-04 20:31:23.808+00 Due 2025-05-01 06:00:00+00

Technology Licensing Opportunity: Integrated Electrochemical System for Carbon Capture and Hydrogen Production

Agency
ENERGY, DEPARTMENT OF
Notice ID
46f440fea8504a3c9190bd1677d4bc61
Type
Special Notice
Posted
2026-03-04 20:31:23.808+00
Award Amount
--
Description
Integrated Electrochemical System for Carbon Capture and Hydrogen Production A Modular, Energy-Efficient Solution for Reducing Atmospheric CO? The Challenge Current carbon capture technologies face significant hurdles in addressing both distributed CO? 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 CO? Concentrations: Capturing CO? from ambient air (400 ppm) remains technologically and economically challenging. These limitations impede scalability and economic viability, especially as global CO? 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 CO? 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 H? to drive CO? capture, achieving net-zero or negative emissions. Market Applications Carbon Management: Direct air capture for mitigating global CO? emissions. Industrial CO? Use: Captured CO? 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 CO? from concentrated sources, such as power plants or industrial facilities.

Basic Information

Notice ID
46f440fea8504a3c9190bd1677d4bc61
Solicitation #
BA-1324
Type
Special Notice
Base Type
Special Notice
Posted Date
2026-03-04 20:31:23.808+00
Response Due
2025-05-01 06:00:00+00
Archive Date
2025-05-16 00:00:00+00
Archive Type
auto15
Active
Yes

Agency

Department
ENERGY, DEPARTMENT OF
Sub-Tier
ENERGY, DEPARTMENT OF
Office
BATTELLE ENERGY ALLIANCE–DOE CNTR
CGAC
089
FPDS Code
8900
AAC Code
899050

Award

Awardee
--
Award Amount
--
Award Number
--
Award Date
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Classification

NAICS Code
541715
Classification Code
AJ13
Set-Aside
--
Set-Aside Code
--

Place of Performance

Street
--
City
Idaho Falls
State
ID
ZIP
83401
Country
USA

Organization

Type
OFFICE
City
Idaho Falls
State
ID
ZIP
83415
Country
USA

Secondary Contact

Name
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Title
--
Email
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Phone
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Fax
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