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Flame-Retardant Electrolytes For Safer Lithium-Ion Batteries

Dept. of EnergySol: BA-846
est. $10K – $150K
Quick Brief

The Department of Energy is offering a technology licensing opportunity for flame-retardant electrolytes designed to enhance the safety and reliability of lithium-ion batteries in extreme environments. The innovative electrolyte system is characterized by its non-flammability, high thermal stability, and compatibility with existing battery chemistries, addressing critical safety concerns in the industry. This technology aims to provide solutions for energy storage, aerospace, and industrial applications requiring stable and safe electrolytes.

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Contract Details

Estimated Value
est. $10K – $150K
Similar contracts award $7K to $170K (median $32K, 930 awards)Within typical range
NAICS Codes

Agency & Contact

Contracting Organization

Agency
ENERGY, DEPARTMENT OF

Point of Contact

John A. Smith
Contracting Officer
(202) 555-0100

Key Dates

Published1mo ago
Jun 17, 2026
Became Presolicitation1mo ago
Jun 17, 2026
Tracked
Became Solicitation1mo ago
Jun 17, 2026
Tracked
Last Updated1mo ago
Jun 19, 2026
Response Datein 2mo
Sep 30, 202612:00 PM
Response Duein 2mo
Sep 30, 2026

Description

for Safer Lithium-Ion Batteries A non-flammable, high-stability electrolyte system that makes lithium-ion batteries safer and more reliable in extreme environments. Technology Summary: A novel class of stabilized phosphoranimines has been developed as air- and water-stable room-temperature ionic liquids (RTILs) with flame-retardant properties and thermal stability beyond 150 °C. These compounds address long-standing limitations of traditional phosphoranimines, which are typically reactive intermediates, by introducing new structural motifs that enable safe handling and practical use. Critically, the materials can solubilize lithium salts and maintain stability in electrochemical environments, making them strong candidates as next-generation electrolytes for lithium-ion batteries. Supporting research on phosphazene-based electrolytes for lithium batteries provides additional context for this development: https://www.sciencedirect.com/science/article/pii/S001346861631091X Problem Addressed Current lithium-ion electrolytes are based on organic carbonates, which are flammable, volatile, and thermally unstable, creating safety and performance limitations in demanding applications. Meanwhile, existing phosphoranimine chemistry has been constrained by unstable intermediates that cannot be readily applied in commercial systems. Industry requires electrolytes that combine flame retardancy, high thermal stability, and tunable performance without sacrificing compatibility with existing battery chemistries. Solution The invention introduces a new synthetic route to N-organophosphoranimines using the Staudinger reaction with a stable imidazolium azide precursor. This enables: Novel structural features: First demonstration of imidazolium substituents bound to nitrogen (rather than phosphorus), creating unexplored electrochemical behavior. RTIL formation with low viscosity: Compound 1 exhibits ~6.5 cSt at 20 °C, while Compound 2 offers higher viscosity, providing flexibility in electrolyte design. Air- and water-stability: Unprecedented for phosphoranimines, enabling practical manufacturing and storage. Versatile solubility: Distinct solubility profiles across organic solvents (e.g., Compound 1 insoluble in toluene; Compound 2 soluble), aiding purification and application tuning. Key Advantages Flame Retardancy: Inherently non-flammable, addressing critical safety concerns. Thermal & Chemical Robustness: Stable at high temperatures and resistant to degradation in air and water. Customizable Chemistry: Broad substituent flexibility allows tailoring of viscosity, solubility, and electrochemical properties. Electrolyte Compatibility: Capable of dissolving lithium salts and operating within relevant electrochemical environments. Novel IP Positioning: Nitrogen-bound imidazolium groups not reported in prior literature, providing strong differentiation. Market Applications Energy Storage: Safer electrolytes for lithium-ion and advanced batteries in consumer, grid, and defense markets. Extreme Environments: Aerospace, military, and industrial applications requiring non-flammable, thermally stable electrolytes. Chemical Processing: Stable solvents and extractants with tunable properties. Industrial Lubricants: Customizable low-volatility liquids with inherent flame-retardant behavior. Licensing Opportunity: INL’s Technology Deployment department focuses solely on licensing intellectual property and collaborating with industry partners who can commercialize our innovations. We do not engage in purchasing, procurement, or hiring external services for technology development. Our

objective is to connect with companies interested in licensing and bringing our technologies to market. Javier Martinez Contracting (No Street Address

2) Idaho Falls, USA to this opportunity.

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