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QUANTUM COMPUTING in the SOLID STATE with SPIN and SUPERCONDUCTING SYSTEMS (QC-S5)

ID: W911NF-22-S-0006 • Type: Solicitation • Match:  100%
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Description

The U.S. Army Research Office (ARO), in collaboration with the Laboratory for Physical Sciences (LPS), is soliciting proposals for research in four research topic areas in the field of gate-based Quantum Computing (QC) in the Solid State with Spin and Superconducting qubit Systems (QC-S5).

The topic areas are as follows:

(A) Modular Quantum Gates (ModQ)

(B) Gates on Advanced qubits with Superior Performance (GASP)

(C) Fast control and readout schemes (FastCARS)

(D) Noise in solid-state spin and superconducting systems (NS5)

Responses to these topics must address the circuit gate-based model of quantum computation (QC) and must be suitable for universal control in multi-qubit architectures. Topics A, C, and D require the use of high fidelity, multi-qubit devices, such as gate-defined SiGe or MOS quantum dots or high fidelity multi-qubit superconducting qubit devices to achieve their objectives. Such qubits can be available in-house by the proposing team, via collaborations funded as part of this BAA and/or sourced from a suitable proven qubit foundry. High fidelity refers to the demonstrated ability to implement state-of-the-art low error universal quantum gates and low error readout. Using such qubits, these topics explore novel control techniques (C), noise (D), and information distribution schemes (A).

In contrast, topic B focuses on new spin and superconducting qubits which have a demonstrated superior performance metric when compared to standard leading gate-based qubits. Superior may be defined in relation to a particular performance metric, without sacrificing other important performance metrics (e.g., T1, T2, valley splitting, environmental requirements, etc.). The goal of topic B is to develop high fidelity multi-qubit gate schemes for such qubits.

Following topics which fall outside this call and will not be considered for award:

1) Atomic and molecular systems (e.g., neutral atoms, trapped ions)

2) Optical photon-based QC

3) Systems without a path to universal 1 and 2 qubit gates

4) Immature qubits which have yet to demonstrate a superior performance metric in leading solid-state qubit approaches, without sacrificing performance in other metrics relevant to gate-based quantum computing

5) Quantum simulators or simulations

6) Quantum annealing, measurement-based QC or other non-gate-based QC approaches (exceptions may be granted for specific application areas, e.g. entanglement generation)

Multi-disciplinary teams are encouraged in response to each topic area. Examples of expertise which should be considered as part of each team includes theory, simulation, materials, fabrication and experimental.

Background
The U.S. Army Research Office (ARO), in collaboration with the Laboratory for Physical Sciences (LPS), is soliciting proposals for research in four key areas of gate-based Quantum Computing (QC) in the Solid State, specifically focusing on Spin and Superconducting qubit Systems (QC-S5).
This initiative aims to advance the field of quantum computing, which is critical for various applications within the Department of Defense and beyond.

Work Details
Proposals must address one or more of the following topics:
(A) Modular Quantum Gates (ModQ): Focuses on demonstrating high fidelity and high speed two-qubit gates between separate quantum computing modules.
(B) Gates on Advanced Qubits with Superior Performance (GASP): Aims to develop quantum gate protocols optimized for advanced qubit approaches, ensuring superior performance metrics without sacrificing other important metrics.
(C) Fast Control and Readout Schemes (FastCARS): Targets novel control techniques and readout schemes for qubits, including closed-loop control feedback mechanisms.
(D) Noise in Solid-State Spin and Superconducting Systems (NS5): Seeks to improve qubit gate fidelities by reducing noise through various techniques, materials, and processes.
Proposals should explore methods to mitigate externally induced thermal noise, material noise, and correlated noise among multiple qubits.

Period of Performance
The program is structured into phases over a four-year period, with each phase lasting two years. Specific milestones will be set for each topic area throughout this duration.

Place of Performance
Research may be conducted at the proposing team's facilities or through collaborations with proven qubit foundries.

Overview

Response Deadline
Nov. 1, 2022, 4:00 p.m. EDT (original: Sept. 30, 2022, 4:00 p.m. EDT) Past Due
Posted
Jan. 18, 2022, 11:04 a.m. EST (updated: Aug. 23, 2022, 8:48 a.m. EDT)
Set Aside
None
Place of Performance
Not Provided
Source

Current SBA Size Standard
1000 Employees
Pricing
Multiple Types Common
Evaluation Criteria
Best Value
On 1/18/22 ACC Aberdeen Proving Ground issued Solicitation W911NF-22-S-0006 for QUANTUM COMPUTING in the SOLID STATE with SPIN and SUPERCONDUCTING SYSTEMS (QC-S5) due 11/1/22. The opportunity was issued full & open with NAICS 541715 and PSC AJ11.
Primary Contact
Name
Kevin Bassler- Contract Officer   Profile
Phone
None

Documents

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Additional Details

Source Agency Hierarchy
DEPT OF DEFENSE > DEPT OF THE ARMY > AMC > ACC > ACC-CTRS > ACC-APG
FPDS Organization Code
2100-W911NF
Source Organization Code
500038576
Last Updated
Nov. 16, 2022
Last Updated By
kia.s.mccormick.civ@mail.mil
Archive Date
Nov. 16, 2022