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TECHNOLOGY LICENSING OPPORTUNITY: AmineBind ML

ENERGY, DEPARTMENT OF, New Mexico · ENERGY, DEPARTMENT OF · TRIAD - DOE CONTRACTOR
Responses dueMon, Mar 1, 20275:00 PM MT · New Mexico time142 days left
PostedTue, Sep 1No amendments since
Solicitation no.S-196258SAM.gov
Set-asideNoneOpen to all firms

What the agency is buying

by RFPFinder from the notice; the solicitation governs

The Department of Energy is offering a technology licensing opportunity for AmineBind ML, a software and model for amine-based carbon capture discovery. Offers will be evaluated on a best value basis.

Scope

  • AmineBind ML, a trained surrogate model, packaged with user-friendly software, predicts CO2 binding energies for amine active sites from simple molecular inputs
  • Teams can screen vast chemical spaces in minutes, align material choices with target regeneration temperatures and reduce trial-and-error in lab campaigns
BAA — white paper first (FAR 35.016)Open to allDays to respond: 142

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 Mar 1, 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-196258
NAICS
NAICS 541715 (Research and Development in the Physical, Engineering, and Life Sciences (except Nanotechnology and Biotechnology))
PSC
PSC AJ12
Period of performance
Per award from notice
BAA open until
Mar 1, 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 Sep 1
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

Tue, Sep 1, 2026Posted
Not statedQuestions due
Mon, Mar 1, 2027 · 5:00 PM MTResponses due · 142 days left

Change log

verified Fri, Oct 9 · 10:30 PM MT

No amendments since posting on Tue, Sep 1, 2026; verified Fri, Oct 9 · 10:30 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: AmineBind ML

A descriptor?based software and model for amine-based carbon capture discovery Organizations that design sorbents for removing CO2 from air gain a fast, chemistry?aware way to rank candidates and focus resources on the most promising structures. AmineBind ML, a trained surrogate model, packaged with user?friendly software, predicts CO2 binding energies for amine active sites from simple molecular inputs. Teams can screen vast chemical spaces in minutes, align material choices with target regeneration temperatures and reduce trial?and?error in lab campaigns.

Overview Developed by Los Alamos National Laboratory, the software ingests a chemical structure as a SMILES string, identifies amine binding sites, then uses a descriptor?based machine learning surrogate model trained on roughly 20,000 electronic?structure calculations to predict CO2 binding energetics. Inference runs far faster than density functional theory, which enables high?throughput exploration of millions of candidate chemistries for direct air capture. Predictions at the atomic scale can be combined with mesoscale modeling to feed broader materials pipelines.

Technology Description AmineBind ML includes a Python?based toolkit that parses molecular inputs in SMILES format, computes chemically meaningful descriptors for amine sites, and applies a trained model to estimate CO2 binding energies. Training data come from binding energetics computed for ~20,000 molecules, anchoring predictions to first?principles energetics and supporting generalization across diverse amine chemistries. Model inference achieves orders?of?magnitude speed?ups versus DFT, which enables rapid ranking and down?selection prior to expensive simulations or synthesis.

This bundle supports screening of millions of structures for direct air capture, delivering candidate materials that balance strong CO2 uptake with manageable regeneration temperatures to minimize operational costs and mitigate sorbent degradation. The atomic?level predictions can integrate with mesoscale treatments, creating a robust modeling pipeline that links molecular binding energetics to process?level performance. Advantages Rapid screening of large chemical spaces from simple SMILES inputs Orders?of?magnitude faster predictions than DFT for CO2 binding energetics Better targeting of materials that balance capture strength and regeneration needs Integration with mesoscale models to support end?to?end materials workflows Software package designed for researchers in chemistry and materials science Market Applications Direct air capture (materials discovery, sorbent optimization) Specialty chemicals (amine functional design, process modeling) Computational chemistry software (screening tools, model?based decision support) Environmental services (air capture planning, emissions reduction analysis) TRL 3 Software information: T5090 U.S.

Patent pending LA-UR-26-27826 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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