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TECHNOLOGY LICENSING OPPORTUNITY: PFAS-Free Sulfonated Poly(norbornene) Ionomeric Binders

ENERGY, DEPARTMENT OF, New Mexico · ENERGY, DEPARTMENT OF · TRIAD - DOE CONTRACTOR
Verified 18 h agoAmended Jun 29
Responses dueWed, Jan 6, 20275:00 PM MT · New Mexico time90 days left
PostedMon, Jun 292 amendments, last Oct 6
Solicitation no.S-194655SAM.gov
Set-asideNoneOpen to all firms

What the agency is buying

by RFPFinder from the notice; the solicitation governs

Los Alamos National Laboratory is offering a PFAS-free sulfonated poly(norbornene) ionomeric binder for licensing. The contract type is a Broad Agency Announcement (BAA) with multiple awards.

Scope

  • PFAS-Free Sulfonated Poly(norbornene) Ionomeric Binders
  • A class of aliphatic sulfonated poly(norbornene) polymers designed specifically as electrode ionomers in proton-conducting devices.
BAA — white paper first (FAR 35.016)Open to allTDP access mandatory before bidDays to respond: 90

How to get the bid documents

  1. Open the notice on SAM.gov
  2. Read the notice; the source lists no attachments
  3. Submit before 5:00 PM MT on Jan 6, 2027

The source notice lists no attachments.

Open the original listing on SAM.gov

Details

Place of performance
Los Alamos, New Mexico
Buyer type
Federal
Notice type
Special Notice
Solicitation no.
S-194655
NAICS
NAICS 325211 (Plastics Material and Resin Manufacturing): 2 open RFPs
Size standard
1,250 employees SBA table, NAICS 325211
PSC
PSC AC34
Period of performance
Per award from notice
BAA open until
Jan 6, 2027 from notice
Contract type
BAA (multiple awards) from notice
Evaluation
White-paper review, then invited proposals (FAR 35.016) from notice
Local presence
Not required
Amendments
2, last Oct 6
Contact
Kathleen McDonald
Office
TRIAD - DOE CONTRACTOR
Email
licensing@lanl.gov

Not stated in the notice: estimated value. Check the bid documents.

Contact details from the source notice. Contact the buyer only about this solicitation.

Key dates

Mon, Jun 29, 2026Posted
Not statedQuestions due
Wed, Jan 6, 2027 · 5:00 PM MTResponses due · 90 days left
Amendment 1
Mon, Jun 29, 2026
Amendment 2
Tue, Oct 6, 2026 · The government procurement notice has been updated to include information about a new PFAS-free material for hydrogen fuel cells and water electrolyzers.

Change log

verified Wed, Oct 7 · 10:30 PM MT
  1. Posted · Special NoticeMon, Jun 29 · 7:48 AM MT
  2. Amendment · New version of the notice posted at the sourceMon, Jun 29 · 8:29 AM MT
  3. Deadline moved · Tue, Jan 6, 2026 · 5:00 PM MT → Wed, Jan 6, 2027 · 5:00 PM MTMon, Jun 29 · 8:29 AM MT
  4. Deadline moved · Wed, Jan 6, 2027 · 5:00 PM MT → Tue, Jan 6, 2026 · 5:00 PM MTTue, Oct 6 · 10:33 PM MT
  5. Amendment · The government procurement notice has been updated to include information about a new PFAS-free material for hydrogen fuel cells and water electrolyzers.Tue, Oct 6 · 10:33 PM MT
  6. Deadline moved · Wed, Jan 6, 2027 · 5:00 PM MT → Tue, Jan 6, 2026 · 5:00 PM MTWed, Oct 7 · 10:32 PM MT

Change log starts Oct 5, 2026 (tracking began); earlier amendments at SAM.gov are being pulled in.

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Notice as published

TECHNOLOGY LICENSING OPPORTUNITY: PFAS-Free Sulfonated Poly(norbornene) Ionomeric Binders

A Cleaner, Tunable Alternative for Hydrogen Fuel Cells and Water Electrolyzers Hydrogen energy systems depend on a small but critical polymer layer inside each electrode, called an ionomeric binder, that shuttles protons, manages water and lets reactant gases reach the catalyst. The industry has long relied on perfluorosulfonic acid (PFSA) materials for this role, which contain PFAS (per? and polyfluoroalkyl substances) forever chemicals now under increasing regulatory pressure. Researchers at Los Alamos National Laboratory have developed a family of highly sulfonated poly(norbornene) ionomers that are entirely PFAS-free, deliver strong proton conductivity, do not poison precious-metal catalysts the way conventional aromatic alternatives do, and can be chemically tuned to keep electrodes dry under load.

Together, these qualities position the material as a drop-in path forward for high-performance proton exchange membrane (PEM) fuel cells and water electrolyzers in a tightening environmental landscape. How it Works PFAS-Free Sulfonated Poly(norbornene) Ionomeric Binders are a class of aliphatic sulfonated poly(norbornene) polymers designed specifically as electrode ionomers in proton-conducting devices. The polymer's backbone is built from fused bicyclic norbornane units that lack the aromatic pi-electron systems found in conventional hydrocarbon ionomers.

The absence of those electrons means the polymer does not strongly adsorb onto platinum catalyst surfaces, so catalytic activity is preserved. Sulfonic acid groups covalently attached onto this backbone supply the proton-conducting pathways, while the bulky bicyclic rings create extra free volume inside the polymer, allowing oxygen and hydrogen to diffuse more easily through the binder layer and reach the catalyst. By adjusting the ratio of sulfonated to non-sulfonated segments, the developers can dial in ionic activity and hydrophobicity to prevent electrode flooding, a persistent issue for PFAS-free ionomers when operated at high current density.

Technology Description In a PEM fuel cell or water electrolyzer, the membrane electrode assembly (MEA) is the heart of the device, and the electrode ionomer inside it must simultaneously conduct protons, transport water, allow reactant gases to reach catalyst particles and bind mechanically to both the membrane and the catalyst layer. PFSA materials such as Nafion meet these requirements but carry the environmental burden associated with perfluorinated chemistries. Hydrocarbon-based sulfonated polymers offer a cleaner, lower-cost route, yet their phenyl-rich backbones tend to adsorb onto platinum and reduce catalytic activity, their gas permeability is typically low and the high sulfonic acid content needed for conductivity drives down hydrophobicity, leading to flooding under realistic operating conditions.

PFAS-Free Sulfonated Poly(norbornene) Ionomeric Binders target each of these failure modes simultaneously by replacing the phenyl-heavy architecture with a sulfonated poly(norbornene) platform. Advantages Contains no PFAS, helping device makers stay ahead of tightening regulations on perfluorinated chemicals Maintains catalyst activity by avoiding the platinum-adsorbing phenyl groups common in other hydrocarbon ionomers Allows higher gas permeability for improved reactant transport at the electrode Offers tunable hydrophobicity to keep electrodes from flooding during demanding operation Built on a polymer platform with demonstrated thermal stability and mechanical durability Synthesized from lower-cost, structurally tunable starting materials compared with perfluorinated chemistries Market Applications Hydrogen Energy (PEM fuel cells, water electrolyzers, reversible fuel cells) Transportation (fuel cell vehicles, heavy-duty trucking, maritime auxiliary power) Stationary Power and Backup (data centers, telecom, distributed generation) Industrial Gas and Chemicals (hydrogen production for refining, ammonia, steel) Aerospace and Defense (unmanned systems, portable power packs) TRL 4 U.S.

Patent pending LA-UR-26-25232 LANL Tech Partnerships: Unlock the Innovative Potential Los Alamos National Laboratory offers a wide range of cutting-edge technologies and capabilities that may provide your company with a competitive edge in the market and unlock the innovative potential that can enhance, refine, and revolutionize your products. LANL's licensing program focuses on moving inventions developed by our researchers to commercial innovations. Patented and patent pending inventions and copyrighted software are available to existing and start-up companies through exclusive and non-exclusive licensing agreements.

For specific discussions, please contact [email on the source notice].

Note: This is not a call for external services for the development of this technology. https://www.lanl.gov/engage/collaboration/feynman-center/partner-with-us/licensing-technology m.lanl.gov/tech-search

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