Skip to content
BidBenchmark
Special NoticeAmendment 2

TECHNOLOGY LICENSING OPPORTUNITY: UltraGraph Membrane Extraction System

TRIAD - DOE CONTRACTOR · Los Alamos, New Mexico, 87545

Response status

Due in 33 days

Sep 30, 2026, 11:00 PM UTC

Responses remain open.

Posted
Jun 5, 2026
Archive date
Sep 30, 2027
SAM status
Active

Answer-first brief

What the source record says

  • TRIAD - DOE CONTRACTOR published this special notice.
  • Competition is listed as No Set aside used.
  • The place of performance is Los Alamos, New Mexico.
  • The notice uses NAICS 334516 (Analytical Laboratory Instrument Manufacturing).

Procurement identity

Notice ID
ff56b32354514f389fc1b2f3a997e56a
Solicitation
S-133595
Base type
Special Notice
Version
2 of 2

Solicitation facts

Structured fields from the current SAM notice version. A dash means the source did not publish a value.

Notice type
Special Notice
Solicitation number
S-133595
Set-aside
No Set aside used
Set-aside code
Posted
Jun 5, 2026
Responses due
Sep 30, 2026, 11:00 PM UTC
Archive date
Sep 30, 2027
Archive type
autocustom
Base type
Special Notice
Organization type
OFFICE
Benchmark category
Category confidence
Category source
Last seen
Aug 29, 2026

Buyer and place

Office hierarchy and place of performance as published.

Department
ENERGY, DEPARTMENT OF
Department code
Subagency
ENERGY, DEPARTMENT OF
Subagency code
Office
TRIAD - DOE CONTRACTOR
Organization path
Organization path codes
Office address
Columbus, OH, 43201, USA
Place of performance
Los Alamos, New Mexico, 87545
City code
State
New Mexico
State code
NM
Postal code
87545
Country

Points of contact

Contact details from the current notice version.

Notice description

Source text reproduced without an AI summary.

The UltraGraph Membrane Extraction System from Los Alamos National Laboratory is a compact, modular device that separates and recovers targeted materials from liquid mixtures using an ultra-thin graphene membrane. The system achieves mass transfer performance comparable to conventional separation equipment with active areas 250 times larger. Its building-block design, chemically stable materials and compatibility with standard laboratory fittings allow it to serve a wide range of applications in chemical separations, recovery purifications and biological sample preparation. Organizations can integrate the UltraGraph system into existing laboratory infrastructure with minimal modification, reducing the cost and complexity of adoption. How it Works The UltraGraph system flows two different liquids through separate microchannels etched into quartz substrates, with a three-layer membrane positioned between them. The membrane consists of a monolayer sheet of graphene held between two porous formvar polymer films, each approximately 125 nanometers thick. The formvar layers are permeable, allowing liquid to reach the graphene surface, while the graphene itself blocks the bulk fluids but permits selected ions or particles to transfer across. Liquids can run co-currently or counter-currently depending on the separation task, enabling controlled mass transfer, ion exchange or heat exchange without the two fluids ever mixing. The assembly is secured between steel plates that compress the quartz chips and ETFE gaskets together, forming a leak-resistant seal that connects to standard screw-port fittings. Technical Description The graphene at the center of the membrane is grown via chemical vapor deposition on copper foil and transferred onto formvar support films using a proprietary process that is one to two orders of magnitude faster than conventional PMMA-based transfer methods. The formvar films have tunable porosity ranging from 20% to 60%. At approximately 125 nanometers thick with an elastic modulus of 7.8 GPa, the formvar provides sufficient mechanical support for atomically thin graphene across 100-micrometer-wide channels at flow rates up to 25 microliters per minute. The graphene layer can be functionalized with oxide groups, nanoparticles or engineered pores to adjust selectivity for specific ions or molecules. The total membrane thickness is approximately 250 nanometers, which is orders of magnitude thinner than membranes used in conventional microfluidic separation devices. The quartz microchannel substrates can be configured in patterns ranging from single channels to branching multi-channel networks and radially extending circular designs. In laboratory testing, the system achieved a pH change of approximately 4 in deionized water contacted with an organic triethylamine solution across the graphene membrane, matching the output of a commercial system whose mass transfer area was 250 times larger. The four-channel counter-current configuration demonstrated 17.4% triethylamine transfer at 15 microliters per minute, on par with that commercial benchmark. The modular stacking design allows additional substrate-membrane pairs to be layered to increase throughput without redesigning the housing, and scaling estimates project that a cylindrical multi-layer assembly could process 26 milliliters per minute across more than 1,000 channels. Because the quartz chips are reusable and the membrane materials are inexpensive to produce, the system lowers the economic discard limit for recoverable materials that might otherwise be classified as waste. Advantages High efficiency in a compact form factor � performs comparably to systems with separation areas 250 times larger Tunable selectivity � the graphene membrane can be chemically modified to target specific ions, molecules or particles Modular and scalable � additional chip-and-membrane layers can be stacked to increase capacity without a full redesign Chemically stable and radiation resistant � formvar support layers are inert to most chemicals and tolerate radiation exposure, suiting the system to demanding operating environments Low-cost and reusable components � quartz chips can be reused, membranes are inexpensive to manufacture and standard connectors simplify integration Leak-resistant design � ETFE gaskets and a compression housing address the leakage issues common in prior microfluidic membrane systems Market Applications Water Treatment and Desalination (ion removal, brine processing, contaminant filtration) Pharmaceutical and Biotechnology (drug compound purification, sample preparation, protein separation) Chemical Manufacturing (solvent extraction, chemical purification, catalyst recovery) Environmental Remediation (industrial wastewater treatment, heavy metal removal, pollution control) Medical Diagnostics and Research (blood and plasma separation, point-of-care sample processing, analytical chemistry) TRL 4 LA-UR-26-24077 US Patent No. 11,471,838 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

Comparable award range

Historical award values for work matched by the fixed rubric—not an estimate of this opportunity.

No past awards scored highly enough to form a comparable range.

Comparable awards

The match score is decomposed so each comparison can be challenged.

No comparable awards are attached to this notice.

Amendment history

A version is preserved whenever the normalized notice contents change.

VersionNotice typeObservedResponses dueContent hash
1Special NoticeAug 10, 2026Sep 30, 2026, 11:00 PM UTC9e3d08864bfabc4d
2Special NoticeAug 28, 2026Sep 30, 2026, 11:00 PM UTCff02f75aa0980843

Record provenance

Field-level lineage for the current opportunity version.

FieldSourceSource as ofParserTransform
agency_nameSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
archive_dateSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
archive_typeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
base_typeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
city_nameSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
contactsSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
country_codeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
descriptionSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
naics_codeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
notice_idSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
notice_typeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
office_citySAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
office_country_codeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
office_nameSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
office_postal_codeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
office_state_codeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
organization_typeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
pop_postal_codeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
posted_dateSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
psc_codeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
response_deadlineSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
sam_urlSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
set_aside_label_rawSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
solicitation_numberSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
state_codeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
subagency_nameSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
titleSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3
upstream_activeSAM.gov Contract OpportunitiesAug 10, 2026sam_opportunity_snapshot@2026.08.22026.08.3

Sources and method

Figures on this page are computed from public federal award records. Numbers are never estimated or generated; where a figure is withheld, the reason is stated rather than filled in.

  1. 1Notice fields come from the SAM.gov contract opportunities record last seen Aug 29, 2026. SAM.gov remains authoritative.

Note 1 covers the solicitation record. No synthetic FAQ or inferred solicitation value is published.

TECHNOLOGY LICENSING OPPORTUNITY: UltraGraph Membrane Extraction System — federal contract opportunity · BidBenchmark