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TECHNOLOGY LICENSING OPPORTUNITY: True Silicone DLP Printing Platform

ENERGY, DEPARTMENT OF, New Mexico · ENERGY, DEPARTMENT OF · TRIAD - DOE CONTRACTOR
Verified 40 h agoUpdated Oct 6 · Updated
Responses dueWed, Jan 6, 20275:00 PM MT · New Mexico time90 days left
PostedMon, Jun 29No amendments since
Solicitation no.S-133734SAM.gov
Set-asideNoneOpen to all firms

What the agency is buying

by RFPFinder from the notice; the solicitation governs

Los Alamos National Laboratory is licensing the True Silicone DLP Printing Platform, a technology that produces genuine silicone parts. Offers will be evaluated on a best-value basis.

Scope

  • True Silicone DLP Printing Platform
  • desktop printer typically required by specialty extrusion equipment
BAA — white paper first (FAR 35.016)Open to allDays 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-133734
NAICS
NAICS 3333
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
None since Jun 29
Contact
Satya Srinivasan
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

Change log

verified Tue, Oct 6 · 10:30 PM MT
  1. Posted · Special NoticeMon, Jun 29 · 7:58 AM MT
  2. Updated · The government procurement notice does not mention any changes to the procurement process, but rather describes a new technology developed by Los Alamos National Laboratory.Tue, Oct 6 · 10:33 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: True Silicone DLP Printing Platform

The True Silicone DLP Printing Platform from Los Alamos National Laboratory allows for more geometries in producing genuine silicone parts, gaskets, lattices, prosthetic components or microfluidic devices on an off-the-shelf desktop printer typically required by specialty extrusion equipment. The result is a material whose polymer backbone is built entirely of silicon-oxygen bonds rather than the carbon-based linkages that quietly compromise so-called silicones on the market today. The True Silicone DLP Printing Platform unlocks that capability through a precursor resin and a paired printing workflow that together deliver real silicone parts free of metal catalyst residues, with tunable porosity, geometric complexity and the aging stability that demanding applications require.

How it Works The platform begins with a printable resin that blends a polymerizable scaffold with a curable siloxane component, along with a photoinitiator and a small amount of a light-absorbing dye to control polymerization depth. A standard DLP printer cures the acrylic scaffold layer by layer to lock the geometry in place, after which the part is heated so the siloxane oligomers crosslink into a continuous silicone network alongside the scaffold. A wash in ethanol, water or ammonium hydroxide then dissolves the sacrificial scaffold, leaving behind a pure silicone object whose polymer backbone consists solely of siliconoxygen bonds and retains a porous structure where the sacrificial scaffold was removed.

Technology Description At its core, the True Silicone DLP Printing Platform relies on a printable resin that combines two chemistries chosen to work in tandem: an acrylic component that polymerizes quickly under light to hold the printed geometry, and a silicone component that cures more slowly into the final material. During printing, these two phases remain mixed but separate into interwoven networks, an arrangement that lets the silicone retain the intended shape once the acrylic is later removed. A small amount of light-absorbing dye keeps polymerization confined to the intended pattern, and the resin is engineered to flow and cure reliably on standard DLP hardware.

After printing, the part is gently heated to complete formation of the silicone network, then soaked in an alcohol or water-based wash, sometimes assisted by UV light or a mild base, to dissolve away the sacrificial acrylic scaffold. What remains is a silicone object whose polymer backbone is built entirely from silicon-oxygen bonds, with mechanical properties and a controllably porous structure whose open pores can be accessed after printing to imbue the silicone with new functionalities, for example by infusing conductive or otherwise active materials. The overall workflow is compatible with inexpensive commodity printers and lends itself to scaling through emerging light-based manufacturing techniques, while the same scaffold-and-wash strategy offers a template for printing other materials that have historically been difficult to fabricate by photopolymer methods.

Advantages Produces true silicone with a continuous silicon-oxygen backbone, avoiding the aging and chemical-compatibility weaknesses of pseudo-silicone alternatives Runs on widely available, low-cost DLP printers rather than specialized direct-ink-write equipment Cures whole layers at once, delivering meaningfully higher throughput than extrusion-based silicone printing Yields parts free of residual metal catalysts, simplifying regulatory and biocompatibility pathways Allows tunable mechanical properties and porosity through resin ratios and porogenic solvent choice Extensible in principle to other material systems that currently resist photopolymer printing through the same sacrificial-scaffold approach Market Applications Medical and Consumer Health (prosthetics, wearable devices, soft implants) Sensing (stretchable circuits, soft robotics components) Microfluidics (lab-on-chip components, custom flow cells) Aerospace and Defense (cushioning foams, vibration-isolation components, sealing parts) Optics and Photonics (soft lenses, light-guiding elements) Consumer and Household Goods (kitchenware, mattresses, apparel components) Development Status: TRL 4 U.S. Patent No. 11,939,415 LA-UR-26-24892 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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