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W911NF23C0025

Definitive Contract

Overview

Government Description
STTR PHASE II: MAGNET-FREE QUASI-ELECTROSTATIC CIRCULATORS AND TOPOLOGICAL INSULATORS BASED ON TEMPORAL MODULATION.
Place of Performance
Austin, TX 78702 United States
Pricing
Fixed Price
Set Aside
Small Business Set Aside - Total (SBA)
Extent Competed
Full And Open Competition After Exclusion Of Sources
Est. Average FTE
4
Related Opportunity
None
Analysis Notes
Amendment Since initial award the Potential End Date has been extended from 05/31/25 to 08/31/25.
Silicon Audio Rf Circulator was awarded Definitive Contract W911NF23C0025 (W911NF-23-C-0025) for Sttr Phase Ii: Magnet-Free Quasi-Electrostatic Circulators And Topological Insulators Based On Temporal Modulation. worth up to $1,699,761 by OUSD Research & Engineering in June 2023. The contract has a duration of 2 years 2 months and was awarded through SBIR Topic Magnetic-free non-reciprocal and topological integrated microwave components with a Small Business Total set aside with NAICS 541715 and PSC AJ11 via direct negotiation acquisition procedures with 7 bids received.

SBIR Details

Research Type
Small Technology Transfer Research Program (STTR) Phase II
Title
Magnet-Free Quasi-Electrostatic Circulators and Topological Insulators Based on Temporal Modulation​
Abstract
Devices with non-reciprocal functionalities are crucial for wireless communications, radar/imaging systems and for the growing field of quantum computing. Traditionally, these functionalities are achieved using ferrite materials biased by an external magnetic field. Unfortunately, such materials face significant challenges: they are scarcely available, and they are not compatible with existing semiconductor manufacturing processes, leading to large size and high implementation costs. Several approaches to achieve magnet-free non-reciprocity have been explored in the past few years, including the use of active voltage-/current- biased transistors and nonlinearities. However, these approaches have found limited application due to their poor noise and linearity performance, limitations on the range of signal power for which nonreciprocity can be achieved, and signal distortions. Our team has pioneered low-noise and linear magnet-free non-reciprocity through spatio-temporal modulation across several physical domains, including acoustics, microwave electronics and optics. Our approach has been based on the use of time modulation to induce a form of synthetic motion that mimics an angular momentum bias, taking inspiration from the fact that wave propagation in moving media is non-reciprocal. In Phase I of this project we have set the basis to successfully implement ultrabroadband, ultracompact circulator, and arrays of them, applying this quasi-electrostatic slow-wave response to enable integrated circulators and topological insulators that overcome all the challenges that have hindered their broad commercialization to date. The goal of Phase II will be to translate this initial success into a practical device, operating at higher frequencies, aiming at mm-wave frequencies, and demonstrating ultra-compact, ultra-broadband circulators with low insertion loss that do not rely on resonant mechanisms, but instead operate essentially independent of frequency. We have also explored arrays of such elements to demonstrate the analogue of Floquet topological insulators. In Phase 1 of this project we have realized a first prototype of such a device, and have also realized its exciting opportunities for broadband slow-waves, enabling to overcome in a uniquely robust way the delay-bandwidth limit for practical technologies. Overall, our efforts in Phase II will address the residual challenges hindering the commercialization of magnet-free nonreciprocal and true-time-delay technology, by extending the bandwidth by orders of magnitude compared to current state-of-the-art, reducing their footprint and adding robustness and real-time reconfigurability.
Research Objective
The goal of phase II is to continue the R&D efforts initiated in Phase I. Funding is based on the results achieved in Phase I and the scientific and technical merit and commercial potential of the project proposed in Phase II. STTRs are completed in conjunction with a research institution.
Partnered Research Institution
CUNY ASRC
Topic Code
OSD21C-002
Agency Tracking Number
O21C-002-0048
Solicitation Number
21.C
Contact
Neal Hall

Status
(Open)

Last Modified 10/22/24
Period of Performance
6/1/23
Start Date
8/31/25
Current End Date
8/31/25
Potential End Date
85.0% Complete

Obligations
$1.7M
Total Obligated
$1.7M
Current Award
$1.7M
Potential Award
100% Funded

Award Hierarchy

Definitive Contract

W911NF23C0025

Subcontracts

0

Activity Timeline

Interactive chart of timeline of amendments to W911NF23C0025

Transaction History

Modifications to W911NF23C0025

People

Suggested agency contacts for W911NF23C0025

Competition

Number of Bidders
7
Solicitation Procedures
Negotiated Proposal/Quote
Evaluated Preference
None
Performance Based Acquisition
Yes
Commercial Item Acquisition
Commercial Item Procedures Not Used
Simplified Procedures for Commercial Items
No

Other Categorizations

Subcontracting Plan
Plan Not Required
Cost Accounting Standards
Exempt
Business Size Determination
Small Business
Defense Program
None
DoD Claimant Code
None
IT Commercial Item Category
Not Applicable
Awardee UEI
GUCGKBLWLLD7
Awardee CAGE
7DCQ4
Agency Detail
Awarding Office
W911NF W6QK ACC-APG DURHAM
Funding Office
HQ0287
Created By
matthew.r.lynch.civ@army.mil
Last Modified By
matthew.r.lynch.civ@army.mil
Approved By
matthew.r.lynch.civ@army.mil

Legislative

Legislative Mandates
None Applicable
Performance District
TX-35
Senators
John Cornyn
Ted Cruz
Representative
Gregorio Casar
Modified: 10/22/24