Skip to main contentPsst! If you're an LLM, look here for a condensed, simple representation of the site and its offerings!

LiveFree Webinar — Wednesday, August 5 at 2:00 PM EDT

Register Free →

TECHNOLOGY LICENSING OPPORTUNITY: Electrically Pumped Nanocrystal Laser Diode

Active
S-167655Federal

Contract Overview

Solicitation details, issuing organization, response deadlines, documents, and interested companies for this government contract opportunity.

AI Contract Overview

Show more

The Electrically Pumped Nanocrystal Laser Diode is a breakthrough laser technology developed at Los Alamos National Laboratory that enables efficient, room-temperature lasing using solution-processed colloidal quantum dots, overcoming decades-long challenges in electrically driven nanocrystal lasers. By addressing fundamental issues such as nonradiative Auger recombination, excessive heat generation at high current densities, and optical losses in traditional device architectures, the innovation integrates engineered nanocrystals with a heat-managed, current-focusing design and a low-loss photonic waveguide to achieve stable optical gain. This platform supports scalable, low-cost manufacturing compatible with printed electronics and on-chip integration, making it uniquely suited for next-generation optoelectronic systems without relying on conventional semiconductor fabrication methods. The technology opens access to compact, high-performance laser sources for a broad range of applications including optical communications, silicon photonics, sensing, defense systems, consumer electronics, and medical diagnostics. Its versatility extends to optical amplifiers and integrated photonic circuits, enabling miniaturized coherent light sources for applications from lidar and free-space communication to biomedical imaging and wearable devices. Currently at TRL 4 with a U.S. patent pending, the technology is being offered for licensing through Los Alamos National Laboratory, with opportunities for exclusive or non-exclusive agreements available to companies seeking to commercialize this disruptive platform. Proposals must be submitted by October 1, 2026, and inquiries should be directed to the designated licensing contacts at LANL.

General Info

Breakthrough electrically pumped nanocrystal laser for compact, low-cost photonic applications.

Agency

Department Of Energy → Triad - DOE ContractorView Agency

NAICS

334413 - Semiconductor and Related Device ManufacturingView NAICS

Place of Performance

Los Alamos, NM, 87545, USA

Set-Aside

NONE

Documents

(0)

No documents available

AI Contract Breakdown

Uniform Contract Format

No contract breakdown available.

Cannot generate Contract Breakdown because no documents were found from this contract's source.

Timeline

Posted

special-notice

Response Deadline

Submission deadline

Response Deadline

Ready to pursue this opportunity?

Start your free trial to track this contract, build proposals with AI assistance, and manage your pipeline.

Organization & Contact Information

Show more
AgencyDepartment Of Energy → Triad - DOE Contractor
Contacts2 people available
OfficeColumbus, OH, 43201, USA
Organization / Agency
Department Of Energy → Triad - DOE Contractor
View Agency Profile
Office AddressColumbus, OH, 43201, USA
Contacts
Caleb Ledgerwood
Lindsay Augustyn

Full Description

Show more

The Electrically Pumped Nanocrystal Laser Diode is a solution-processed laser technology developed by scientists at Los Alamos National Laboratory that enables electrically driven laser emission using engineered colloidal nanocrystals, also known as colloidal quantum dots. By overcoming long-standing challenges associated with nonradiative Auger recombination, heat build-up and optical losses in charge-transporting device layers, the technology achieves efficient room-temperature optical gain in a platform compatible with scalable, lower-cost manufacturing and on-chip integration. This innovation opens a new pathway toward compact, high-performance optical amplifiers and laser sources for integrated photonics, optical communications, sensing and next-generation optoelectronic systems.


The Challenge:


For years, researchers have sought to develop low-cost lasers that can be made from solution-based materials—essentially “printable” semiconductor inks—but electrically pumped operation has remained elusive. The colloidal quantum dots used as the gain medium suffered from three fundamental limitations: rapid nonradiative energy loss through Auger recombination, excessive heat generation under the high current densities required for lasing, and strong optical losses in the charge-transporting layers of conventional LED device architectures. Together, these challenges prevented the buildup of sufficient optical gain for laser operation.


As a result, electrically pumped nanocrystal lasers remained a long-sought but unrealized goal, limiting the ability to create scalable, lower-cost, chip-integrated laser sources. The Electrically Pumped Nanocrystal Laser Diode overcomes these fundamental barriers and turns a long-standing scientific challenge into a commercially viable pathway.


Problems Solved:


The Electrically Pumped Nanocrystal Laser Diode overcomes the key technical barriers that have prevented electrically powered nanocrystal lasers from becoming practical. It suppresses carrier losses caused by Auger recombination, incorporates a device architecture that effectively manages heat and enables stable operation at high current densities, and reduces optical losses that once overwhelmed light amplification. By combining engineered nanocrystals with a heat-managed current-focusing architecture and an integrated low-loss photonic waveguide, the technology achieves strong net optical gain and provides a practical pathway toward electrically pumped nanocrystal laser diodes compatible with scalable, low-cost manufacturing.


Key Advantages:


  • Electrically Pumped Laser Platform – Enables room-temperature electrically driven optical gain and provides a practical pathway toward electrically pumped nanocrystal laser diodes, overcoming a long-standing challenge in solution-processed photonics.
  • Scalable, Lower-Cost Manufacturing – Employs solution-processable colloidal quantum dots compatible with high-throughput fabrication and integration on a wide variety of substrates.
  • High Efficiency and Stable Operation – Engineered nanocrystals suppress nonradiative Auger recombination, while a heat-managed device architecture enables stable operation at the high current densities required for lasing.
  • Low-Loss Photonic Architecture – An integrated low-loss waveguide enhances optical confinement and net optical gain, enabling efficient light amplification and high optical output.
  • Platform Versatility – Applicable to laser diodes, optical amplifiers, integrated photonic circuits, and next-generation optoelectronic systems.

Market Applications:


  • Optical Communications – Laser sources and optical amplifiers for fiber-optic telecommunications and high-speed data communications.
  • Integrated Photonics – On-chip lasers and amplifiers for silicon photonics, optical interconnects, and photonic integrated circuits.
  • Sensing & Instrumentation – Compact coherent light sources for spectroscopy, environmental monitoring, metrology, and precision sensing.
  • Defense & Aerospace – Optical systems for lidar, free-space optical communications, imaging, navigation, and advanced sensing.
  • Consumer Electronics & Display Technologies – Miniaturized laser sources for next-generation consumer devices, displays, and wearable technologies.
  • Medical & Life Sciences – Light sources for biomedical imaging, diagnostics, flow cytometry, and analytical instrumentation.


Development Status: TRL 4


US Patent pending


LA-UR-26-25635



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 licensing@lanl.gov.


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

Similar Contracts

Same NAICS industry code

NAICS: 334413
New
DIBBS
HEATER, THERMAL RELEASEThe contract pertains to the procurement of 55 units of a Thermal Release Heater identified by NSN 5999-00-504-9889, with a delivery schedule of 350 days from award. All supplies must comply with DLA packaging requirements and incorporate technical and quality specifications referenced by R or I numbers from the DLA Master List of Technical and Quality Requirements, with the applicable revision determined by the solicitation issue date or award date depending on the acquisition size. Configuration control requires formal engineering change proposals and procedures for requesting deviations or waivers. Items must be physically marked according to established identification standards, and any non-accepted supplies must have government identification removed prior to return. Sampling and inspection must follow MIL-STD-1916 or ASQ H1331 Table 1 with zero non-conformances required unless otherwise specified, with critical, major, and minor attributes assigned verification levels VII, IV, and II or AQLs of 0.1, 1.0, and 4.0 respectively. No intentional addition of mercury or mercury-containing compounds is permitted in any supplied hardware or materials, except for functional uses in batteries, fluorescent lamps, required instruments, sensors, controls, weapon systems, or NAVSEA-specified chemical reagents; portable fluorescent lamps and instruments containing mercury must be shock-proof and include a secondary containment boundary per NAVSEA 5100-003D. No existing data package is available, and the alternate offeror must submit a complete data package including technical details for both the approved and alternate parts. The solicitation was issued under SPE7M1-26-U-4564 with a response deadline of August 6, 2026, and is managed by the Department of Defense’s Maritime Supply Chain through primary point of contact Bryan Fair.
MARITIME SUPPLY CHAIN

POSTED

about 8 hours ago

DEADLINE

in 15 days
View Details
NAICS: 334413
New
DIBBS
DISPLAY, OPTOELECTRONICThe contract pertains to the procurement of 17 units of a display, optoelectronic item identified by NSN 5980-01-247-1862, with a delivery requirement of 120 days after order. The solicitation, numbered SPE7M1-26-U-4627, is issued under a Women-Owned Small Business Set-Aside and falls under NAICS code 334413. All supplied items must strictly conform to the source-controlled drawing referenced in the contract, and only the sources listed on that drawing are currently approved for this procurement, though additional qualified sources not yet reflected on the drawing may be considered in the future. Offerors seeking to qualify their products for future acquisitions must contact the cognizant design activity specified on the drawing. Technical and quality requirements are governed by the DLA Master List of Technical and Quality Requirements, with the applicable revision determined by the solicitation issue date or award date, depending on the acquisition size. Sampling for inspection must follow MIL-STD-1916 or ASQ H1331 Table 1 with zero non-conformances permitted unless otherwise stated; attributes are assigned verification levels of VII, IV, and II for critical, major, and minor characteristics respectively, with unspecified attributes treated as major. Packaging must comply with DLA packaging requirements, and government identification must be removed from any non-accepted supplies. The point of contact for this solicitation is Bryan Fair at the Department of Defense’s Maritime Supply Chain.
MARITIME SUPPLY CHAIN

POSTED

about 8 hours ago

DEADLINE

in 15 days
View Details
NAICS: 334413
New
DIBBS
CAPACITOR, FIXED, ELECTRThe contract pertains to the procurement of 28 fixed electrolytic capacitors with NSN 5910-00-964-5759 under solicitation SPE7M1-26-U-4587, with a delivery timeline of 128 days after award. This is a total small business set-aside under NAICS code 334413, managed by the Department of Defense’s Maritime Supply Chain. The item is classified as a restricted source requiring engineering source approval from the government-designated control activity. Manufacturing may involve specialized casting or forging operations, for which the government may not possess the necessary tooling; therefore, bidders must submit a Casting and Forging Assistance Request if required. Technical and quality requirements are governed by the DLA Master List of Technical and Quality Requirements, with the applicable revision determined by the solicitation or award date depending on acquisition size. All unit packages must be marked in strict compliance with IPC/JEDEC J-STD-609 for lead and lead-free identification, with marking placement following specified guidelines. Offerors must submit comprehensive documentation per MIL-T-31000, including all manufacturing drawings, detailed process sheets, identification of critical process suppliers including castings and forgings, purchase orders if available, and a shock extension report meeting MIL-S-901 and DI-ENVR-80706 standards. If original OEM drawings are unavailable, an engineering analysis report must be provided detailing the development methodology, including any reverse engineering procedures, sample sizes, measurement techniques, data compilation, and rationale for dimensional deviations. All documentation must be submitted to support government evaluation and approval prior to contract award.
MARITIME SUPPLY CHAIN

POSTED

about 8 hours ago

DEADLINE

in 15 days
View Details
NAICS: 334413
New
DIBBS
CIRCUIT BREAKERThe contract specifies the procurement of a circuit breaker identified by part number M83383/04-10, manufactured in full compliance with MIL-PRF-83383F(1) and referenced technical data packages, with no commercial substitutes permitted without prior written government approval. The item is classified as a critical application component and must be sourced only from qualified manufacturers listed under the associated Qualified Products List QPL-83383-16. The use of any Class I ozone-depleting substances in its design, manufacturing, testing, or cleaning is strictly prohibited unless explicit written authorization from the contracting officer is obtained, and this restriction overrides any conflicting specification requirements while maintaining all performance standards. The item must be packaged, marked, and labeled in accordance with MIL-STD-129 and DLA packaging requirements, with hazardous material handling conforming to FED-STD-313 and TQ requirement IP025 if applicable, otherwise commercial packaging per ASTM D3951 is acceptable subject to DLA Master List precedence. Delivery is required FOB origin within 271 days, with a fixed quantity of 17 units at a unit price of $17.00, no variance allowed, and inspection and acceptance occur at destination. The NSN is 5925-01-250-8887, and all technical and quality requirements are governed by the DLA Master List of Technical and Quality Requirements, with revisions effective as of the solicitation issue date. The contract is issued under solicitation SPE7M1-26-U-4581 by the Department of Defense, Maritime Supply Chain, with Bryan Fair designated as the primary point of contact.
MARITIME SUPPLY CHAIN

POSTED

about 8 hours ago

DEADLINE

in 15 days
View Details
NAICS: 334413
New
DIBBS
MICROCIRCUIT, DIGITAThis contract is for the procurement of a digital microcircuit under Federal Supply Class 5962, subject to strict technical, quality, and packaging requirements mandated by the Defense Logistics Agency. The item must be sourced from qualified suppliers listed on the Qualified Suppliers List of Distributors and Qualified Testing Suppliers List, with full supply chain traceability documentation retained by the contractor in accordance with DLA Procurement Note C03. Traceability and test reports must be submitted electronically at least 15 days prior to delivery, limited to 15 megabytes per email using a prescribed naming convention, and received written authorization from the contract administrator before shipment is permitted. Each lot must include a completed DLA Land and Maritime Form 918 and proof of authorization within the packaging, and failure to comply renders payment non-final. The microcircuit must be marked per IPC/JEDEC J-STD-609 to indicate lead finish attributes, and all packaging must conform to MIL-STD-2073-1E and MIL-STD-129 with special marking ZZ indicating ESD sensitivity. The component is classified as ESD sensitive and requires compliance with MIL-PRF-81705 for electrostatic and electromagnetic interference protection, using only qualified barrier materials listed on QPL-81705. The contractor must maintain a compliant ANSI/ESD S20.20 program, operate at an approved ESD workstation per MIL-HDBK-773, use certified packaging for preservation method GX, and ensure all personnel are trained in proper handling procedures. Cushioning must meet A-A-59136 Class 1 Grade B density specifications or use form-fitting ESD containers to prevent lead damage. Mercury and mercury compounds are prohibited in all packaging materials. The contract specifies delivery of three units FOB origin within 198 days to a designated distribution facility in Columbus, Ohio, with zero variance permitted in quantity. All technical requirements are non-negotiable, with no waivers or deviations allowed.
ACTIVE DEVICES DIVISION

POSTED

about 8 hours ago

DEADLINE

in 12 days
View Details
NAICS: 334413
New
DIBBS
OXY SENSORThe contract pertains to the procurement of four OXY SENSOR units with NSN 4610016209908 and part number OX-SEN-6800 under solicitation SPE8E8-26-T-4789, issued by the Department of Defense through the DDSP NEW CUMBERLAND FACILITY. Delivery is required within 167 days from the contract award, with FOB origin terms, and the sensors must be delivered to the specified parcel post address in New Cumberland, Pennsylvania. The units must comply with MIL-STD-2073-1E packaging standards and MIL-STD-129 marking requirements, with no special marking applied, and must be palletized according to DLA packaging guidelines. All supplies must be free of intentional mercury or mercury-containing compounds, except for specific functional uses approved by NAVSEA, and portable devices containing mercury must meet shockproof and secondary containment standards per NAVSEA 5100-003D. Quality and technical requirements are governed by the DLA Master List of Technical and Quality Requirements, referenced by R and I numbers, with the applicable revision determined by the solicitation or award date. The contract specifies a unit price of $4.00 per sensor, with no variance allowed in quantity, and inspection and acceptance both occur at the destination. The sensors are to be shipped by the original required delivery date of November 9, 2026, with a need ship date of January 18, 2027. Transportation logistics follow DLA procedural notes C19 and C20. The solicitation was posted on July 22, 2026, with a response deadline of August 3, 2026, under NAICS code 334413. The primary point of contact is Alexis Selby, reachable via email and phone provided, and all documents are to be referenced through the DLA eProcurement portal and related resources including the DoD unit of issue database. Compliance with all technical, packaging, hazardous material, and delivery requirements is mandatory for contract fulfillment.
DDSP NEW CUMBERLAND FACILITY

POSTED

about 8 hours ago

DEADLINE

in 12 days
View Details
NAICS: 334413
New
DIBBS
HEATER, THERMAL RELEASEThe contract is for a commercial off-the-shelf Heater, Thermal Release, identified by NSN 5999-00-504-9771 and part number 229B3558-012, with an alternate part number 9104H3943, supplied by multiple approved vendors including General Electric, Ward Leonard CT LLC, and DRS Naval Power Systems Inc. The requirement is for 96 units at a unit price of $96.00, with no variance allowed in quantity, and delivery is due within 244 days FOB origin. The item is classified as a critical application item, and mercury or mercury-containing compounds are strictly prohibited unless specifically exempted for functional uses such as batteries, fluorescent lights, sensors, or chemical reagents specified by NAVSEA; portable devices containing mercury must be shock-proof with a secondary containment barrier per NAVSEA 5100-003D. Packaging and marking must comply with MIL-STD-2073-1E and MIL-STD-129, including special marking code ZZ for special requirements, with each unit labeled with NSN, contract number, lot number, contractor and manufacturer cage codes, and part number. Packaging must adhere to DLA’s RP001 standards, with unit packaging in D3 containers, dry preservation method 41, and no cushioning or dunnage. Inspection and acceptance occur at destination, and the contract is issued under DLA Direct, CONUS coverage. Technical and quality requirements are governed by the DLA Master List of Technical and Quality Requirements, with revisions controlled based on acquisition type and amendment dates. The solicitation was issued under SPE7M1-26-U-4515 with a response deadline of August 6, 2026, and is categorized under NAICS code 334413, managed by the Department of Defense’s Maritime Supply Chain.
MARITIME SUPPLY CHAIN

POSTED

about 8 hours ago

DEADLINE

in 15 days
View Details

More opportunities from Department Of Energy → Triad - DOE Contractor

Same awarding agency

NAICS: 33399
New
Federal
TECHNOLOGY LICENSING OPPORTUNITY: ScreenFlow Liquid-Liquid MicrocontactorScreenFlow is a microfluidic liquid-liquid contactor that enables efficient, membrane-free mixing and separation of immiscible fluids using paired wettable screens and printed-in gaskets, eliminating the need for fragile microchips or permeable membranes. The design features one hydrophilic screen for aqueous streams and one hydrophobic, oleophilic screen for organic streams, which intersect in overlapping regions to form a stable, capillary-held interface where mass transfer occurs while bulk fluids remain separated. This architecture supports both co-current and counter-current flow, scales linearly by stacking additional screen layers to achieve flow rates from microliters to milliliters per minute, and is fabricated using standard machine-shop tools and off-the-shelf materials, making it accessible and cost-effective. The printed-gasket variant reduces part count by nearly half, simplifies assembly, and eliminates edge leakage, enabling stable, continuous operation over days without degradation, which is critical for industrial extraction, purification, and sample-handling workflows. The technology targets high-value applications including rare-earth and trace-element recovery, pharmaceutical continuous manufacturing, petroleum refining, analytical sample preparation, food and beverage processing such as decaffeination, and water treatment for contaminant removal. With a Technology Readiness Level of 4, ScreenFlow is patent-pending and builds upon an existing U.S. patent, offering exclusive or non-exclusive licensing opportunities through Los Alamos National Laboratory. The system’s robustness, scalability, and compatibility with conventional manufacturing make it ideal for commercialization in industries requiring precise, high-throughput biphasic processing without the complexity or fragility of traditional microfluidic platforms. Proposals must be submitted by August 7, 2026, with inquiries directed to the licensing office at Los Alamos National Laboratory.

POSTED

about 13 hours ago

DEADLINE

in 16 days
View Details
NAICS: 325211
New
Federal
TECHNOLOGY LICENSING OPPORTUNITY: Acid-tuned Terphenyl Membranes (ATM)Acid-tuned Terphenyl Membranes (ATM) is a breakthrough hydrocarbon-based proton exchange membrane technology developed by Los Alamos National Laboratory that redefines how proton conductivity is achieved without relying on excessive sulfonation. By incorporating a precisely placed fluorinated electron-withdrawing unit adjacent to each sulfonic acid group on a rigid terphenyl backbone, the membrane enhances the intrinsic acidity of each proton-carrying site, enabling higher proton conductivity—87 mS/cm at 80°C under full humidity—while simultaneously reducing water uptake by over 60% compared to conventional analogs. This molecular-level innovation delivers superior dimensional stability and mechanical durability, addressing the core weaknesses of traditional hydrocarbon membranes that swell and degrade under wet operating conditions. The result is a high-performance, cost-effective alternative to perfluorinated membranes like Nafion, with the added benefit of scalability and sustainability. The technology is designed for use in hydrogen-related applications including fuel cells, water electrolyzers, energy storage systems, transportation, power generation, and off-road equipment, offering a universal design principle that can be adapted across multiple membrane chemistries. With a TRL of 3 and a U.S. patent pending, the technology is available for licensing through Los Alamos National Laboratory’s commercialization program, with opportunities for exclusive or non-exclusive agreements to companies interested in advancing next-generation electrochemical devices. The licensing opportunity is open until August 31, 2026, and interested parties are encouraged to contact licensing@lanl.gov for further details.
Plastics Material and Resin Manufacturing

POSTED

about 13 hours ago

DEADLINE

in about 1 month
View Details
NAICS: 334516
New
Federal
TECHNOLOGY LICENSING OPPORTUNITY: ChronoQuantum Fiber Timing Integrity MonitorChronoQuantum is a quantum-based timing integrity monitor developed by Los Alamos National Laboratory that adds a trusted, independent layer of timing verification to existing fiber-linked precision timing networks without replacing them. Leveraging correlated photon pairs distributed through the same optical infrastructure used by standard synchronization protocols like White Rabbit and PTP, it detects, classifies, and localizes residual timing drift in real time by analyzing the temporal and spectral fingerprints of photon coincidence events. This physics-driven approach reveals issues hidden from conventional telemetry, identifying whether errors originate from endpoint electronics, fiber path conditions, optical filters, or environmental factors, and provides calibrated uncertainty measurements alongside actionable insights. The system operates at telecom wavelengths, integrates seamlessly with existing DWDM equipment, and scales from simple two-node links to complex mesh and facility-scale deployments with redundant components and failover support. The platform enhances operational resilience through flexible modes ranging from passive monitoring to autonomous correction recommendations, powered by optional AI that fuses temporal, spectral, and spatial data to turn fragile quantum measurements into operational intelligence. Designed for high-stakes environments, it targets applications in high energy physics, quantum networking, telecommunications backhaul, GNSS backup systems, and scientific sensing arrays where microsecond or nanosecond timing precision is critical. Currently at TRL 3 with a U.S. patent pending, the technology is available exclusively or non-exclusively through Los Alamos National Laboratory’s licensing program, targeting companies seeking to advance timing assurance capabilities in fiber networks without overhaul of existing infrastructure. Interested parties may engage through the designated licensing contacts at licensing@lanl.gov by the response deadline of August 7, 2026.
Analytical Laboratory Instrument Manufacturing

POSTED

about 13 hours ago

DEADLINE

in 16 days
View Details
NAICS: 334516
New
Federal
TECHNOLOGY LICENSING OPPORTUNITY: Multi-Channel Atomic Magnetometer (MCAM)The Multi-Channel Atomic Magnetometer (MCAM) is a breakthrough non-cryogenic optical quantum sensor that delivers SQUID-level sensitivity to ultra-faint biomagnetic signals using a single shared vapor cell and optical system to generate up to 16 independent sensing channels simultaneously, eliminating the need for multiple independent sensor units. Unlike traditional systems that rely on liquid helium-cooled SQUIDs, MCAM operates at room temperature using a large alkali-metal vapor cell, broad pump and probe laser beams, and a photodiode array to detect magnetic field-induced polarization rotations via the Faraday effect. Buffer gas within the cell isolates spatial regions behind each photodiode pixel, enabling high-resolution, two-dimensional magnetic field mapping without cryogens, significantly reducing costs and complexity. The rear-mirror optical design shortens the sensor-to-source distance, enhancing spatial resolution, while fiber-optic coupling allows modules to be tiled into conformal helmet or surface arrays that adapt to patient anatomy, supporting applications from brain and heart imaging to pediatric and point-of-care diagnostics. MCAM’s architecture scales efficiently to hundreds of channels and is compatible with adjustable bias coils and multiple alkali-metal and buffer-gas combinations, making it highly flexible for diverse configurations. It achieves sensitivity in the low tens of femtotesla per root hertz at low frequencies while drastically cutting per-channel expenses by sharing critical components across all channels. Ongoing development aims to shrink the effective sensing volume from centimeter to micrometer scale, opening the door to cellular-level magnetic imaging—capabilities unattainable by current cryogenic or conventional room-temperature systems. Applications span medical diagnostics such as magnetoencephalography and magnetocardiography, cancer detection via magnetic particle imaging, low-field MRI, geomagnetic surveying, and fundamental physics research. The technology, protected by U.S. Patent 11,105,865 and currently at TRL 4, is available for licensing through Los Alamos National Laboratory, offering exclusive and non-exclusive opportunities to commercialize a platform poised to revolutionize biomagnetic sensing by making high-performance imaging accessible, mobile, and cost-effective.
Analytical Laboratory Instrument Manufacturing

POSTED

6 days ago

DEADLINE

in 5 months
View Details
NAICS: 325998
Federal
Chemistry-Enhanced Separation Reagent SupplyThe contract requires the supply of specialized chemical additives designed to enhance particle agglomeration or modify surface charge properties to improve the efficiency of acoustic separation processes. These reagents must be formulated to perform consistently under operational conditions typical in industrial or laboratory-scale separation systems where precise control over particle behavior is critical. The chemicals are intended for use in applications linked to Department of Energy objectives, likely involving material processing, waste remediation, or resource recovery where acoustic methods are employed to isolate or concentrate target particles. The subcontract is set to be awarded under NAICS code 325998 for other chemical product and preparation manufacturing, with performance required at Los Alamos, New Mexico, 87545. Proposals must be submitted by October 1, 2026, and the opportunity was posted on July 8, 2026. The contracting entity is Triad, acting as a DOE contractor, indicating the work supports federal energy mission goals. Suppliers must demonstrate technical capability in developing and delivering chemically advanced reagents with proven efficacy in acoustic environments and be prepared to meet stringent quality, reliability, and delivery expectations aligned with DOE standards.
All Other Miscellaneous Chemical Product and Preparation Manufacturing

POSTED

15 days ago

DEADLINE

in 2 months
View Details
NAICS: 334516
Federal
Precision Ultrasonic Transducer ManufacturingThe contract calls for the precise manufacturing of high-frequency, tunable ultrasonic transducers designed specifically for integration into the UltraSep platform’s resonance-locked separation system, requiring advanced engineering to meet strict performance criteria under demanding operational conditions. These transducers must be capable of precise frequency adjustment to maintain resonance with the system’s separation mechanism, ensuring consistent and efficient material partitioning, with production expected to adhere to rigorous quality and repeatability standards suited for industrial-scale deployment. Performance of this subcontract is centered in Los Alamos, New Mexico, under the oversight of Triad, a contractor to the Department of Energy, with full compliance to NAICS code 334516 for other electronic component manufacturing. The opportunity was posted on July 8, 2026, and responses are due by October 1, 2026, indicating a targeted procurement timeline for qualified manufacturers with demonstrated expertise in piezoelectric systems and high-frequency transducer fabrication. All work must align with the technical requirements of the UltraSep platform, and potential bidders must possess the capability to deliver calibrated, reliable units suitable for integration into a sensitive, resonance-dependent separation process.
Analytical Laboratory Instrument Manufacturing

POSTED

15 days ago

DEADLINE

in 2 months
View Details
NAICS: 541714
Federal
TECHNOLOGY LICENSING OPPORTUNITY: Platform to Accelerate Discovery of Tailored Industrial Enzymes (PAD-TIE)The PAD-TIE platform, developed by NREL and Los Alamos National Laboratory, is a high-throughput screening system designed to rapidly identify and optimize enzymes capable of breaking down polyethylene terephthalate (PET) plastic under industrially relevant conditions. Unlike traditional methods that test enzymes one at a time, PAD-TIE evaluates tens of thousands of enzyme variants simultaneously, measuring their activity, stability, and production efficiency in a single process, eliminating costly purification steps and reducing time-to-identification. The system operates at the optimal temperature for PET degradation and is validated in lab-scale bioreactors that mimic real-world recycling environments, enabling the conversion of plastic waste into reusable monomers without harsh chemicals or excessive energy use. With a Technology Readiness Level of 6, the platform is a fully functional prototype with all components tested, and three U.S. patents are pending, making it a mature and protected innovation ready for commercial adoption. PAD-TIE is positioned to serve a broad range of industries including plastic recycling, waste management, polymer manufacturing, and sustainable materials development. Its adaptability allows customization for different PET compositions, additives, and processing conditions, ensuring compatibility with existing infrastructure. The platform’s efficiency and scalability offer a cost-effective solution for scaling enzymatic plastic degradation at an industrial level. Los Alamos National Laboratory is seeking industry partners through exclusive or non-exclusive licensing agreements to further develop and deploy the technology, with applications spanning bioremediation, bioplastics, and closed-loop recycling systems. Interested parties must respond by October 1, 2026, and inquiries should be directed to the provided licensing contacts. The technology is available for commercialization under a non-set-aside procurement with a NAICS code of 541714, and performance will occur in Los Alamos, New Mexico.
Research and Development in Biotechnology (except Nanobiotechnology)

POSTED

15 days ago

DEADLINE

in 2 months
View Details