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Special Notice Expired 1 notice

TECHNOLOGY/BUSINESS OPPORTUNITY Gas Diffusion Electrodes for CO2 electrolysis in Cation Free Systems 2025-116

Solicitation 2025-116 Copied Notice ID 6bb4d7c5e5d24526b3743642b672b510 Copied ENERGY, DEPARTMENT OF — LLNS – DOE CONTRACTOR
SAM.gov
Posted
Aug 26, 2025
Deadline
Sep 26, 2025
Set-aside
None
NAICS
335999
PSC
N/A

Summary

AI-generated · Aug 27, 2025

LLNL is offering a collaboration to develop and commercialize its Gas Diffusion Electrodes for CO2 electrolysis in cation-free systems. The technology uses a two-layer, multi-stack GDE—starting with a physically vapor-deposited metallic catalyst, topped with a second catalyst/polymer-electrolyte layer—that together deliver near 100% CO selectivity at 200 mA/cm2 for more than 40 hours at voltages below 3 V, while optimizing water transport to avoid cathode drying. It leverages higher-TRL anion-exchange membranes instead of forward-bias bipolar membranes and can be customized for specific CO2 reduction targets, demonstrated under commercially relevant DI-water conditions. LLNL has filed for patent protection and is seeking industry partners to move the technology toward commercialization.

This is not a procurement. Companies interested in commercializing LLNL’s Gas Diffusion Electrodes should submit an electronic or written statement of interest that includes the company name and address, a point of contact, and a description of corporate expertise and facilities relevant to commercialization. Include the Notice ID and/or title in the subject line of the response. Written responses should be directed to LLNL’s Innovation and Partnerships Office, with additional information available via LLNL’s IPO resources.

Opportunity: Lawrence Livermore National Laboratory (LLNL), operated by the Lawrence Livermore National Security (LLNS), LLC under contract no. DE-AC52-07NA27344 (Contract 44) with the U.S. Department of Energy (DOE), is offering the opportunity to enter into a collaboration to further develop and commercialize its Gas Diffusion Electrodes for CO2 electrolysis in Cation Free Systems. Background: During CO2 electrolysis, cations need to arrive at the cathode to catalyze the chemical transformations and allow for highly selective carbon dioxide (CO2) reduction. While salts are required to drive efficient electrolysis, they also lead to failure modes. Salts crossing over from the anode to cathode increase the electro-osmotic drag of water which can induce flooding, or if sufficient cations reach the cathode, the concentration can exceed the solubility limit typically in the flow field due to convective drying leading to precipitation and gas blockage. To overcome the need for salts at the cathode, existing strategies include fixed charge at the cathode surface using polymer electrolytes. Currently, systems that use deionized (DI) water fed systems require a forward bias bipolar membrane. Forward bias bipolar membranes are at a low technology readiness level (TRL) due to the recombination of liquids and gases at the membrane interface leading to mechanical failure and require further research to develop durable systems. To date, state-of-the-art systems using DI water anolytes can still only achieve up to 80% selectivity for CO at 200 mA cm-2 which is insufficient for commercialization. There is a need for a more selective design to reduce CO2 to CO, a building block for many chemical compounds. Description: LLNL inventors have developed a gas diffusion electrode (GDE) architecture employing a multi-stack design. The first layer consists of a physical vapor deposited metallic catalyst film which then has a second composite layer deposited on top consisting of a second catalyst material mixed with a polymer electrolytes. The two layers working in tandem allow for near 100% CO selectivity at 200 mA cm-2 for over 40 hours at full cell voltages <3V. LLNL researchers also have optimized the operating conditions for increasing water transport to the cathode to prevent drying of the system. This allows for a steady-state water flux to the cathode balanced by water consumed at the cathode both electrochemically and through an anion exchange membrane. Advantages/Benefits: Allows use of higher TRL anion exchange membranes rather than lower TRL forward bias bipolar membranes. Potential ability to customize GDE multi-stack design for specific CO2 reduction target products. Demonstrated use under commercially relevant operating conditions for CO2 to CO electrolysis in DI water. Potential Applications: CO2 electrolysis; potentially water electrolysis Development Status: Current stage of technology development: TRL ? 0-2 ? 3-5 ? 5-9 LLNL has filed for patent protection on this invention. LLNL is seeking industry partners with a demonstrated ability to bring such inventions to the market. Moving critical technology beyond the Laboratory to the commercial world helps our licensees gain a competitive edge in the marketplace. All licensing activities are conducted under policies relating to the strict nondisclosure of company proprietary information. Please visit the IPO website at https://ipo.llnl.gov/resources for more information on working with LLNL and the industrial partnering and technology transfer process. Note: THIS IS NOT A PROCUREMENT. Companies interested in commercializing LLNL's Gas Diffusion Electrodes for CO2 electrolysis in Cation Free Systems should provide an electronic OR written statement of interest, which includes the following: Company Name and address. The name, address, and telephone number of a point of contact. A description of corporate expertise and/or facilities relevant to commercializing this technology. Please provide a complete electronic OR written statement to ensure consideration of your interest in LLNL's Gas Diffusion Electrodes for CO2 electrolysis in Cation Free Systems. The subject heading in an email response should include the Notice ID and/or the title of LLNL s Technology/Business Opportunity and directed to the Primary and Secondary Point of Contacts listed below. Written responses should be directed to: Lawrence Livermore National Laboratory Innovation and Partnerships Office P.O. Box 808, L-779 Livermore, CA 94551-0808 Attention: 2025-116

From Special Notice posted on Aug 26, 2025

Notice history

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  1. Special Notice LATEST Posted Aug 26, 2025 View

Details

Solicitation number 2025-116
Notice ID 6bb4d7c5e5d24526b3743642b672b510
Notice type Special Notice
NAICS 335999
Place of performance Livermore, California
Archive date Oct 11, 2025

Award Information

Not yet awarded

Documents

No files available

View on SAM.gov

Contacts

primary
Jared Lynch

Email

Phone

secondary
Charlotte Eng

Email

Phone

Agency

ENERGY, DEPARTMENT OF
ENERGY, DEPARTMENT OF
LLNS – DOE CONTRACTOR

Place of Performance

Livermore, California
USA

Dates

Posted Aug 26, 2025 11 months ago
Last Updated Aug 06, 2026 2 days ago
Due Sep 26, 2025 10 months ago