Technology Licensing Opportunity: Integrated Electrochemical System for Carbon Capture and Hydrogen Production BA-1324
Summary
AI-generated · Sep 28, 2025A licensing opportunity is being offered for an integrated electrochemical system that combines a Carbonate-Composite Membrane Reactor (CCMR) with a Protonic Ceramic Electrolyzer (PCE). The CCMR captures CO2 directly from ambient air while generating electricity and steam, and the PCE uses that steam and electricity to produce renewable hydrogen. The system is thermally coupled (exothermic CCMR with endothermic PCE) and uses a closed water loop so water produced in the CCMR drives hydrogen production, delivering a net-zero water impact and reduced energy losses compared with traditional solvent-based capture.
The design is modular and scalable for distributed direct-air capture or centralized installations, and it operates at intermediate temperatures around 600C to enable waste-heat integration and a range of applications. Potential uses include carbon management (ambient DAC), industrial CO2 utilization (e.g., enhanced oil recovery, synthetic fuels, carbonation), and distributed or mobile capture from transportation or other dispersed sources, as well as point-source capture from power plants or industrial facilities. The emphasis is on energy efficiency, simplified operation (no solvent regeneration), and the potential to enable net-zero or negative emissions with renewable hydrogen.
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 (~600C), 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.
From Special Notice posted on Sep 22, 2025Integrated 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 (~600C), 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.
From Special Notice posted on Apr 20, 2026Notice history
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Special Notice LATEST Posted Apr 20, 2026View changes (1)
- Response Deadline: Nov 01, 2025 → Jun 01, 2026
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USA