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DESC0023907

Project Grant

Overview

Grant Description
Scalable high-density superconducting flex cables and circuits
Place of Performance
Lehi, Utah 84043-3474 United States
Geographic Scope
Single Zip Code
Analysis Notes
Amendment Since initial award the End Date has been extended from 04/09/24 to 09/09/25 and the total obligations have increased 575% from $199,999 to $1,349,999.
Nielson Scientific was awarded Project Grant DESC0023907 worth $1,349,999 from the Office of Science in July 2023 with work to be completed primarily in Lehi Utah United States. The grant has a duration of 2 years 2 months and was awarded through assistance program 81.049 Office of Science Financial Assistance Program. The Project Grant was awarded through grant opportunity FY 2023 Phase I Release 2.

SBIR Details

Research Type
STTR Phase I
Title
Scalable High-density Superconducting Flex Cables and Circuits
Abstract
There is a growing need for a commercially available high-density superconducting flex cable for a variety of ultra-sensitive, high pixel count instruments/focal plane arrays for the study of space as well as quantum computing and quantum information processing. However, traditional flex circuit manufacturing techniques and tools cannot achieve the high channel density necessary for these customers, and silicon/thin-film microfabrication techniques are slow, expensive, and cannot meet the production quantity and size requirements. Neither of the current methods for fabricating superconducting flex cables offers a pathway to a scalable and economical high-density superconducting flex cable that fully addresses the needs of either the space instruments or quantum computers. The proposed manufacturing approach will be able to create a scalable, economical high-density superconducting flex cable by combining elements of traditional flex circuit manufacturing with a new proprietary “direct write” nano-ablation process developed by Nielson Scientific. The nano-ablation technology enables the rapid fabrication of sub-micron scale features across large areas, eliminating the slow and costly steps required by lithography-based fabrication, and enabling the feature sizes necessary for high-density channels in the flex cables. The proposed Phase I feasibility study for the proposed high-density superconducting flex cable will be an experimental demonstration of the ability of the nano-ablation system to create high-density, electrically isolated traces at a scale necessary for the proposed flex cables, an engineering design study of processes for creating multiple superconducting metal layers in the flex circuits, superconducting vias between the layers, contact pads that enable superconducting connections to be made to the flex cable, and will include a detailed study of the technical requirements for potential applications of the flex cables. If the proposed project is carried over to Phase II, it will create a new manufacturing capability for high density superconducting flex cables and circuits that has the potential to benefit areas such as ultrasensitive instruments for space science, quantum computing, quantum information processing, and high sensitivity medical imaging including CT scans and X-ray imaging, and impact areas such as gravity imaging, geology, navigation, security, timekeeping, spectroscopy, chemistry, magnetometry, healthcare, and medicine with new types of quantum-enabled sensors.
Topic Code
C56-37c
Solicitation Number
None

Status
(Complete)

Last Modified 9/30/24

Period of Performance
7/10/23
Start Date
9/9/25
End Date
100% Complete

Funding Split
$1.3M
Federal Obligation
$0.0
Non-Federal Obligation
$1.3M
Total Obligated
100.0% Federal Funding
0.0% Non-Federal Funding

Activity Timeline

Interactive chart of timeline of amendments to DESC0023907

Transaction History

Modifications to DESC0023907

Additional Detail

Award ID FAIN
DESC0023907
SAI Number
None
Award ID URI
SAI EXEMPT
Awardee Classifications
Small Business
Awarding Office
892430 SC CHICAGO SERVICE CENTER
Funding Office
892401 SCIENCE
Awardee UEI
MVTBKVUKLCZ3
Awardee CAGE
7TQA8
Performance District
UT-03
Senators
Mike Lee
Mitt Romney

Budget Funding

Federal Account Budget Subfunction Object Class Total Percentage
Science, Energy Programs, Energy (089-0222) General science and basic research Grants, subsidies, and contributions (41.0) $199,999 100%
Modified: 9/30/24