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Special Notice Expired 2 notices

Technology Licensing Opportunity: Room-Temperature Electrochemical Metallization of Rare Earth Elements BA-1456

Solicitation BA-1456 Copied Notice ID 6826ed0c97e5493782f4e8fc68f77c7b Copied ENERGY, DEPARTMENT OF — BATTELLE ENERGY ALLIANCE–DOE CNTR
SAM.gov
Posted
Sep 15, 2025
Deadline
Oct 15, 2025
Set-aside
None
NAICS
331492
PSC
AG22

Summary

AI-generated · Sep 16, 2025

Technology licensing opportunity for a room-temperature electrochemical metallization process involving rare earth elements, indicating a potential license for this technology. The record provides no further description of scope, eligibility, or submission requirements.

Note: This is a technology licensing opportunity. No procurement, grants, or funding opportunities are associated with this notice. Room-Temperature Electrochemical Metallization of Rare Earth Elements A low-energy, low-hazard alternative to molten-salt electrolysis for sustainable REE production. Technology Summary This invention introduces a method to produce metallic rare earth elements (REEs) through room-temperature electrometallization in anhydrous electrolytes. By leveraging unique ion-pairing interactions, Lewis acid-base chemistry, and interfacial structuring, the system enables efficient REE reduction and stable metal formation without the extreme energy use or toxic byproducts of conventional fused salt electrolysis. Problem Addressed High cost & regulatory barriers: Current molten-salt electrolysis (600 1200 C) generates toxic HF gas and rare earth fluoride waste, triggering costly EPA and OSHA compliance requirements. Environmental impact: Legacy processes produce hazardous waste with long-term contamination risks, leading to industry abandonment in North America. Supply chain dependence: Metallic REEs are only produced at scale in China, creating vulnerabilities for U.S. manufacturers and defense applications. Solution The invention replaces high-temperature fused salt electrolysis with an ambient-temperature electrochemical process. The approach integrates three synergistic innovations: Tuned electrolyte nucleophilicity enabling more efficient reduction pathways. Lewis acid-base coordination control stabilizing the ligand environment during deposition. Interfacial electrochemical structuring improving reaction kinetics and metal stability. This combination allows REE electrodeposition at room temperature, reducing both energy demand and hazardous byproduct formation. This invention enables dual functionality, electrodeposition and (in-situ) electrorefining. Key Advantages Lower energy consumption eliminates the need for 600 1200 C molten salt processes. Reduced environmental liabilities avoids HF gas emissions and toxic fluoride salt accumulation. Safer operations circumvents EPA and RCRA compliance barriers tied to FSE. Domestic supply potential enables North American REE production for critical industries. Scalable platform adaptable to multiple REEs including neodymium, samarium, dysprosium, and terbium. Market Applications Permanent magnets essential for EV traction motors, wind turbines, and energy-efficient refrigeration. Defense systems critical components for satellites, communication devices, and advanced weapons. Lightweight alloys enhancing aerospace and automotive materials. Electronics miniaturized devices requiring REE-based components. Battery technologies advanced REE-containing chemistries for high-performance storage.

From Special Notice posted on Sep 15, 2025

Note: This is a technology licensing opportunity. No procurement, grants, or funding opportunities are associated with this notice. Room-Temperature Electrochemical Metallization of Rare Earth Elements A low-energy, low-hazard alternative to molten-salt electrolysis for sustainable REE production. Technology Summary This invention introduces a method to produce metallic rare earth elements (REEs) through room-temperature electrometallization in anhydrous electrolytes. By leveraging unique ion-pairing interactions, Lewis acid-base chemistry, and interfacial structuring, the system enables efficient REE reduction and stable metal formation without the extreme energy use or toxic byproducts of conventional fused salt electrolysis. Problem Addressed High cost & regulatory barriers: Current molten-salt electrolysis (600 1200 C) generates toxic HF gas and rare earth fluoride waste, triggering costly EPA and OSHA compliance requirements. Environmental impact: Legacy processes produce hazardous waste with long-term contamination risks, leading to industry abandonment in North America. Supply chain dependence: Metallic REEs are only produced at scale in China, creating vulnerabilities for U.S. manufacturers and defense applications. Solution The invention replaces high-temperature fused salt electrolysis with an ambient-temperature electrochemical process. The approach integrates three synergistic innovations: Tuned electrolyte nucleophilicity enabling more efficient reduction pathways. Lewis acid-base coordination control stabilizing the ligand environment during deposition. Interfacial electrochemical structuring improving reaction kinetics and metal stability. This combination allows REE electrodeposition at room temperature, reducing both energy demand and hazardous byproduct formation. This invention enables dual functionality, electrodeposition and (in-situ) electrorefining. Key Advantages Lower energy consumption eliminates the need for 600 1200 C molten salt processes. Reduced environmental liabilities avoids HF gas emissions and toxic fluoride salt accumulation. Safer operations circumvents EPA and RCRA compliance barriers tied to FSE. Domestic supply potential enables North American REE production for critical industries. Scalable platform adaptable to multiple REEs including neodymium, samarium, dysprosium, and terbium. Market Applications Permanent magnets essential for EV traction motors, wind turbines, and energy-efficient refrigeration. Defense systems critical components for satellites, communication devices, and advanced weapons. Lightweight alloys enhancing aerospace and automotive materials. Electronics miniaturized devices requiring REE-based components. Battery technologies advanced REE-containing chemistries for high-performance storage.

From Special Notice posted on Apr 20, 2026

Notice history

2
  1. Special Notice Posted Sep 15, 2025
  2. Special Notice LATEST Posted Apr 20, 2026
    • Response Deadline: Oct 15, 2025Jun 15, 2026

Details

Solicitation number BA-1456
Notice ID 6826ed0c97e5493782f4e8fc68f77c7b
Notice type Special Notice
Product / Service (PSC) AG22
NAICS 331492
Place of performance Idaho Falls, Idaho
Archive date Oct 30, 2025

Award Information

Not yet awarded

Documents

No files available

View on SAM.gov

Contacts

primary
Javier Martinez

Email

Agency

ENERGY, DEPARTMENT OF
ENERGY, DEPARTMENT OF
BATTELLE ENERGY ALLIANCE–DOE CNTR

Place of Performance

Idaho Falls, Idaho 83401
USA

Dates

Posted Sep 15, 2025 10 months ago
Last Updated Aug 06, 2026 1 day ago
Due Oct 15, 2025 9 months ago