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Notice ID: b0baab0c522841d4ba948df363890f0d
Special Notice Posted 2026-03-04 20:30:33.532+00 Due 2026-04-20 06:00:00+00

Available for Licensing:High-Quality Superconducting ZrN Thin Films via Molecular Beam Epitaxy for Quantum Computing and Advanced Superconducting Technologies

Agency
ENERGY, DEPARTMENT OF
Notice ID
b0baab0c522841d4ba948df363890f0d
Type
Special Notice
Posted
2026-03-04 20:30:33.532+00
Award Amount
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Description
High-Quality Superconducting ZrN Thin Films via Molecular Beam Epitaxy for Quantum Computing and Advanced Superconducting Technologies Description INL researchers have successfully established the parameters necessary for the deposition of high-quality superconducting zirconium nitride (ZrN) using molecular beam epitaxy (MBE). Key parameters include growth rate, temperature, flux ratios of zirconium (Zr) and nitrogen (N), and the choice of substrate. These parameters significantly impact the crystalline quality of the ZrN, which in turn affects its physical properties. Additionally, novel methods have been developed to induce unconventional superconductivity in conventional superconductors like ZrN. Key Benefits Superior Quality: MBE allows for fine-tuned growth parameters, resulting in top-quality, single-crystal ZrN superconducting films. Unconventional Superconductivity: Methods for inducing unconventional superconductivity in ZrN have been conceptualized, potentially enabling more fault-tolerant computing. Novel Application: ZrN has not previously been deposited using MBE, offering a unique advantage over existing superconducting thin films, which are often polycrystalline. Tunable Impurities, Defects, and stoichiometry: The precise control during deposition minimizes impurities and defects, enabling better performance and higher critical temperatures. Direct control of stoichiometry allows for tunable performance metrics such as critical field and temperature. Market Applications Quantum Computing: Superconducting ZrN thin films can be used as platforms for superconducting qubits, a key component in the development of quantum computers. Epitaxial Superconducting Heterostructures: The high-quality, high-uniformity films can be used to create advanced structures needed for unconventional superconducting technologies with atomic layer precision at wafer scale. Research and Development: The technology can be utilized by researchers and companies focused on advancing superconducting materials and their applications. Fault-Tolerant Computing: Unconventional superconducting schemes based on this technology could lead to more robust and fault-tolerant computing systems. This technology represents a significant advancement in the field of superconducting materials, with broad implications for quantum computing and other high-tech applications.

Basic Information

Notice ID
b0baab0c522841d4ba948df363890f0d
Solicitation #
BA-1552
Type
Special Notice
Base Type
Special Notice
Posted Date
2026-03-04 20:30:33.532+00
Response Due
2026-04-20 06:00:00+00
Archive Date
2026-05-05 00:00:00+00
Archive Type
auto15
Active
Yes

Agency

Department
ENERGY, DEPARTMENT OF
Sub-Tier
ENERGY, DEPARTMENT OF
Office
BATTELLE ENERGY ALLIANCE–DOE CNTR
CGAC
089
FPDS Code
8900
AAC Code
899050

Award

Awardee
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Award Amount
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Award Number
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Award Date
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Classification

NAICS Code
334413
Classification Code
AJ13
Set-Aside
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Set-Aside Code
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Place of Performance

Street
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City
Idaho Falls
State
ID
ZIP
83401
Country
USA

Organization

Type
OFFICE
City
Idaho Falls
State
ID
ZIP
83415
Country
USA

Secondary Contact

Name
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Title
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Email
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Phone
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Fax
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