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Special Notice Expired 1 notice

TECHNOLOGY/BUSINESS OPPORTUNITY Anisotropic, multi-functional polymeric microparticles additives for polymeric formulation enhancement 2025-117

Solicitation 2025-117 Copied Notice ID 585172c49b5246558a24457c0e8600ee Copied ENERGY, DEPARTMENT OF — LLNS – DOE CONTRACTOR
SAM.gov
Posted
Dec 04, 2025
Deadline
Jan 04, 2026
Set-aside
None
NAICS
325211
PSC
N/A

Summary

AI-generated · Dec 05, 2025

Anisotropic, multi-functional polymeric microparticles additives for polymeric formulation enhancement are offered as a licensing opportunity to collaborate with LLNL to develop and commercialize this technology. A two-phase high-shear mixing approach creates anisotropic microparticles that can be extruded and oriented in Direct Ink Write (DIW) inks, then cured with a binder to form polymer–polymer composites. The system can incorporate magnetic or conductive fillers, allowing printed structures to respond to magnetic fields. The method is scalable to kilograms and compatible with a wide range of materials (epoxies, silicones, acrylates, liquid crystal elastomers, urethanes, including uncured precursors and melts). Potential applications include rheology modification in DIW inks and adding multi-functional properties to both inks and printed parts.

LLNL is seeking industry partners to license, develop, and commercialize this technology. This is not a procurement. Interested companies should submit an electronic or written statement of interest that includes the company name and address, a primary contact with phone and email, and a description of relevant corporate expertise and facilities to commercialize the technology. Include a description of capabilities to bring the technology to market, and use a subject line that cites the Notice ID and/or the technology title. Responses should be directed to LLNL’s Innovation and Partnerships Office (NDA policies apply for proprietary information). For more information on the licensing process, see 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 Anisotropic, multi-functional polymeric microparticles additives for polymeric formulation enhancement. Background: When shearing polymer fluids in an aqueous or other non-solvent phase, polymers typically form spheres. In these two-phase systems, it is just not energetically favorable for non-spherical shapes to form as that would increases the surface area to volume ratio. Some approaches to produce anisotropic particles include: stretching spherical polymer particles and curing/quenching them in that state template-assisted methods where particles are formed on patterned surfaces like those with microchannels or pores microfluidic techniques swelling with solvent phase separation that results in anisotropic shapes. Generally, these methods are often difficult to scale either due to the possible throughput or due to the complicated infrastructure/hardware needed; are often expensive due to equipment needed; may be limited in the materials that can be used; and may include additional processes or waste products that are undesirable. Description: LLNL researchers have developed a synthetic methodology for making anisotropic polymer microparticles using a two phase high shear mixing protocol. One phase is an aqueous phase which may include polymer viscosity modifiers and/or surfactants to increase the internal shear stress applied to the polymer phase precursor and stabilize particle formation. When the polymer phase is formulated with rheological properties that resist flow (i.e., produce a thixotropic material), anisotropic particles can be formed. The anisotropic particles could be extruded, aligned preferentially along the direction of extrusion, and cured together using an appropriate binder to create polymer-polymer composites in 3D printable Direct Ink Write (DIW) inks. In addition to changes that affect rheological properties, functional fillers like magnetic or conductive particles can also be added to the polymer phase. The resulting multi-functional, anisotropic polymer microparticles impart a magnetic response to the allowing them to orient in the direction of an applied magnetic field. These particles can be isolated and 3D printed, resulting in a printed structure that is also response to a magnetic field. Advantages/Benefits: Method has potential to be scalable to multiple kilograms. Method is amenable to many different materials (epoxies, silicones, acrylates, liquid crystal elastomers, urethanes) including uncured precursors and polymer melts. Method takes advantage of well-known emulsion chemistry techniques like use of viscosity modifiers or surfactants to tune resulting anisotropic microparticle shape, size, size distribution, and surface functionality. Allows for ability to add multi-functional materials to the polymer microparticles (magnetic, electronic) to introduce to properties to both the DIW ink and the resulting 3D printed structure. Potential Applications: Rheology modifier in DIW inks, multi-functionality additive to DIW inks and prints, 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 Anisotropic, multi-functional polymeric microparticles additives for polymeric formulation enhancement 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 Anisotropic, multi-functional polymeric microparticles additives for polymeric formulation enhancement. 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: 2025-117

From Special Notice posted on Dec 04, 2025

Notice history

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  1. Special Notice LATEST Posted Dec 04, 2025 View

Details

Solicitation number 2025-117
Notice ID 585172c49b5246558a24457c0e8600ee
Notice type Special Notice
NAICS 325211
Place of performance Livermore, California
Archive date Jan 19, 2026

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 Dec 04, 2025 8 months ago
Last Updated Aug 06, 2026 1 day ago
Due Jan 04, 2026 7 months ago