Available for Licensing: High-Quality Actinide Thin Films via Molecular Beam Epitaxy for Quantum and Optoelectronic Devices
| Agency: | ENERGY, DEPARTMENT OF |
|---|---|
| State: | Idaho |
| Type of Government: | Federal |
| FSC Category: |
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| NAICS Category: |
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| Posted Date: | Dec 1, 2025 |
| Due Date: | Dec 15, 2025 |
| Solicitation No: | BA-1441 |
| Original Source: | Please Login to View Page |
| Contact information: | Please Login to View Page |
| Bid Documents: | Please Login to View Page |
Description
- Contract Opportunity Type: Special Notice (Updated)
- Updated Published Date: Dec 01, 2025 10:40 am MST
- Original Published Date: Oct 23, 2025 02:20 pm MDT
- Updated Response Date: Dec 15, 2025 12:00 am MST
- Original Response Date: Nov 15, 2025 12:00 am MST
- Inactive Policy: 15 days after response date
- Updated Inactive Date: Dec 30, 2025
- Original Inactive Date: Nov 30, 2025
- Initiative:
- Original Set Aside:
- Product Service Code: AJ12 - GENERAL SCIENCE AND TECHNOLOGY R&D SERVICES; GENERAL SCIENCE AND TECHNOLOGY; APPLIED RESEARCH
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NAICS Code:
- 334413 - Semiconductor and Related Device Manufacturing
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Place of Performance:
Idaho Falls , ID 83401USA
High-Quality Actinide Thin Films via Molecular Beam Epitaxy for Quantum and Optoelectronic Devices
Description
Researchers at INL have developed a process to deposit high-quality epitaxial crystalline thin films of uranium and thorium, as well as their nitrides, using molecular beam epitaxy (MBE). MBE is a non-equilibrium vacuum deposition technique that provides precise control over the composition and interfaces of the material, making it ideal for fabricating high-purity, defect-free, single-crystalline thin films.
Actinide thin films, particularly those of uranium and thorium, present significant challenges for ab initio modeling due to their complex electron correlations. High-quality samples are essential for providing feedback to develop accurate models. Additionally, the strong electron correlations in actinide materials make them promising candidates for next-generation computing technologies.
By tuning the growth parameters, including temperature, pressure, growth rate, and flux ratios, researchers can controllably form high-quality actinide thin films. This technique also allows for seamless integration with existing semiconductor technology, facilitating the development of advanced device structures.
Key Benefits
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High-Quality Thin Films: MBE enables the fabrication of high-purity, defect-free, single-crystalline thin films of uranium and thorium, as well as their nitrides.
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Precise Control: The technique provides precise control over growth parameters, ensuring the formation of high-quality materials suitable for advanced applications.
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Integration with Existing Technology: the ability to fabricate epitaxial films at wafer scale will facilitate seamless integration with existing semiconductor technology, making it suitable for the development of advanced electronic and computing devices.
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Advanced Modeling Support: High-quality actinide thin films provide essential feedback for developing accurate ab initio models, facilitating further research and development.
Market Applications
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Quantum Computing: The unique properties of actinide materials can be harnessed to explore new computational paradigms. The precise control and high-quality deposition of actinide thin films make them ideal candidates for developing next-generation quantum computing devices.
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Advanced Research: The technology can be utilized by researchers focused on studying the complex electron correlations in actinide materials. High-quality samples are essential for advancing theoretical and experimental research in this field.
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Optoelectronics: The ability to fabricate high-quality crystalline thin films of actinides and their nitrides with strong electron correlations and spin orbit coupling can be leveraged to develop advanced electronic devices.
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Semiconductor Industry: Epitaxial films are more easily integrated with existing semiconductor technology than more disordered crystals, which can open up new possibilities for creating advanced device structures, potentially leading to innovations in various high-tech applications.
Advantage
Molecular beam epitaxy (MBE) offers several advantages over other deposition techniques, such as DC sputtering, which has been previously used to form monocrystalline actinide-nitride thin films. MBE is regarded as the pinnacle of vacuum deposition techniques due to its ability to create atomically precise layers and use high-purity sources. While MBE has been used to deposit all-metal alloys, it has not been previously employed for actinide-nitrides. This novel application of MBE differentiates the technology from existing methods and provides a unique advantage in producing high-quality actinide thin films with tunable properties.
- 1955 N Fremont Avenue
- Idaho Falls , ID 83415
- USA
- Javier Martinez
- javier.martinez@inl.gov
- Dec 01, 2025 10:40 am MSTSpecial Notice (Updated)
- Nov 29, 2025 10:04 pm MST Special Notice (Original)
Related Document
| Oct 23, 2025 | [Special Notice (Original)] Available for Licensing: High-Quality Actinide Thin Films via Molecular Beam Epitaxy for Quantum and Optoelectronic Devices |
| Feb 3, 2026 | [Special Notice (Updated)] Available for Licensing: High-Quality Actinide Thin Films via Molecular Beam Epitaxy for Quantum and Optoelectronic Devices |
| Apr 13, 2026 | [Special Notice (Updated)] Available for Licensing: High-Quality Actinide Thin Films via Molecular Beam Epitaxy for Quantum and Optoelectronic Devices |
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