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Special Notice Expired 2 notices

Technology Licensing Opportunity: Controlled SPAN Electrode Synthesis for and High-Performance Energy Storage BA-1678

Solicitation BA-1678 Copied Notice ID 18210984a96b4e70847785ef8621165d Copied ENERGY, DEPARTMENT OF — BATTELLE ENERGY ALLIANCE–DOE CNTR
SAM.gov
Posted
Mar 04, 2026
Deadline
May 01, 2026
Set-aside
None
NAICS
335910
PSC
6140

Summary

AI-generated · Oct 09, 2025

High-performance SPAN cathode materials and their enhancements are being offered for licensing, including two integrated innovations: a controlled, scalable synthesis process using a custom high-pressure reactor (up to 3000 psi, up to 450 C) with real-time monitoring, gas-reagent control, and safety features such as headspace elimination and gas capture; and SPAN transition metal sulfide composites with optimized sulfide distribution to boost conductivity, sulfur utilization, cycling stability, and nominal discharge voltage in lithium-sulfur and sodium-sulfur batteries. The combined platform aims to deliver consistent, high-quality SPAN materials at larger scales and to enable higher-performance battery cathodes than traditional SPAN.

This is a technology licensing opportunity through INL’s Technology Deployment program, which connects industry partners with IP to commercialize innovations. The arrangement is licensing-focused (no government procurement or external development services), with the intent that a licensee would bring the technology to market. Market applications include grid energy storage, electric vehicles, aerospace/defense, and specialty electronics; demonstrated scalability up to 250 g and safety-conscious, adaptable processing are highlighted advantages.

Controlled SPAN Electrode Synthesis for and High-Performance Energy Storage Scalable production and enhanced stability through advanced reactor design and transition metal sulfide integration Technology Summary Researchers at Idaho National Laboratory (INL) have developed an integrated approach to producing sulfurized polyacrylonitrile (SPAN) electrode materials at scale with improved electrochemical performance. This dual innovation combines: Controlled, scalable SPAN synthesis enabled by a custom high-pressure chemical reactor with real-time monitoring and additive reagent control. SPAN transition metal sulfide composites designed to enhance conductivity, sulfur utilization, mitigate polysulfide formation, prolong cycle life, and increase nominal discharge voltage performance in lithium-sulfur and sodium-sulfur batteries. The combined platform addresses longstanding barriers in SPAN production and performance, opening viable pathways for next-generation rechargeable batteries in grid storage, electric mobility, and defense applications. Problem Addressed Manufacturing barriers: Consistent, high quality SPAN cathode materials are difficult to produce in large batch sizes. Existing methods lack precision, scalability, and safety. Commercial gap: Battery developers and manufacturers lack access to a reliable process to enable large scale SPAN production needed to advance lithium-sulfur and sodium-sulfur chemistries. Solution INL s approach provides both a production pathway and a material enhancement strategy: Reactor-based controlled synthesis Operates under high pressures (up to 3000 PSI) and high temperatures (up to 450C) with the ability to eliminated headspace for safety and yield. Captures noxious gases and allows gas reagent introduction. Integrates electronic controls, real-time spectroscopy for product feedback, and reproducibility. SPAN metal sulfide composites Incorporation of transition metal sulfides into the SPAN matrix. Optimized distribution and morphology of sulfides to stabilize cycling and improve conductivity. Potential to increase operating voltage beyond the nominal discharge of 1.85 V for traditional SPAN. Together, these innovations offer a scalable, tunable process to deliver advanced cathode materials for next generation energy storage. Key Advantages Scalability: Controlled batch production demonstrated up to 250 g, supporting pilot-scale manufacturing. Repeatable Material Quality: Batch to batch variability minimized to produce consistent, high-quality material. Safety and efficiency: High-pressure containment, gas capture, and headspace elimination reduce operational risks. Process versatility: Gas reagent introduction and real-time feedback allow tailoring of SPAN properties to specific applications. Market Applications Grid energy storage: Long-duration, cost-competitive solutions for renewable integration. Electric vehicles: Higher energy density cathodes for next-generation EV batteries. Aerospace and defense: Lightweight, high-capacity storage systems for mission-critical applications.[PB3] Specialty electronics: Resilient cathode materials for portable and ruggedized devices. Licensing 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.

From Special Notice posted on Oct 06, 2025

Controlled SPAN Electrode Synthesis for and High-Performance Energy Storage Scalable production and enhanced stability through advanced reactor design and transition metal sulfide integration Technology Summary Researchers at Idaho National Laboratory (INL) have developed an integrated approach to producing sulfurized polyacrylonitrile (SPAN) electrode materials at scale with improved electrochemical performance. This dual innovation combines: Controlled, scalable SPAN synthesis enabled by a custom high-pressure chemical reactor with real-time monitoring and additive reagent control. SPAN transition metal sulfide composites designed to enhance conductivity, sulfur utilization, mitigate polysulfide formation, prolong cycle life, and increase nominal discharge voltage performance in lithium-sulfur and sodium-sulfur batteries. The combined platform addresses longstanding barriers in SPAN production and performance, opening viable pathways for next-generation rechargeable batteries in grid storage, electric mobility, and defense applications. Problem Addressed Manufacturing barriers: Consistent, high quality SPAN cathode materials are difficult to produce in large batch sizes. Existing methods lack precision, scalability, and safety. Commercial gap: Battery developers and manufacturers lack access to a reliable process to enable large scale SPAN production needed to advance lithium-sulfur and sodium-sulfur chemistries. Solution INL s approach provides both a production pathway and a material enhancement strategy: Reactor-based controlled synthesis Operates under high pressures (up to 3000 PSI) and high temperatures (up to 450C) with the ability to eliminated headspace for safety and yield. Captures noxious gases and allows gas reagent introduction. Integrates electronic controls, real-time spectroscopy for product feedback, and reproducibility. SPAN metal sulfide composites Incorporation of transition metal sulfides into the SPAN matrix. Optimized distribution and morphology of sulfides to stabilize cycling and improve conductivity. Potential to increase operating voltage beyond the nominal discharge of 1.85 V for traditional SPAN. Together, these innovations offer a scalable, tunable process to deliver advanced cathode materials for next generation energy storage. Key Advantages Scalability: Controlled batch production demonstrated up to 250 g, supporting pilot-scale manufacturing. Repeatable Material Quality: Batch to batch variability minimized to produce consistent, high-quality material. Safety and efficiency: High-pressure containment, gas capture, and headspace elimination reduce operational risks. Process versatility: Gas reagent introduction and real-time feedback allow tailoring of SPAN properties to specific applications. Market Applications Grid energy storage: Long-duration, cost-competitive solutions for renewable integration. Electric vehicles: Higher energy density cathodes for next-generation EV batteries. Aerospace and defense: Lightweight, high-capacity storage systems for mission-critical applications.[PB3] Specialty electronics: Resilient cathode materials for portable and ruggedized devices. Licensing 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.

From Special Notice posted on Mar 04, 2026

Notice history

2
  1. Special Notice Posted Oct 06, 2025 View
  2. Special Notice LATEST Posted Mar 04, 2026
    • Response Deadline: Nov 01, 2025May 01, 2026

Details

Solicitation number BA-1678
Notice ID 18210984a96b4e70847785ef8621165d
Notice type Special Notice
Product / Service (PSC) 6140
NAICS 335910
Place of performance Idaho Falls, Idaho
Archive date May 16, 2026

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 Mar 04, 2026 5 months ago
Last Updated Aug 06, 2026 1 day ago
Due May 01, 2026 3 months ago