ERROR CORP. — Department of Energy SBIR Phase II: C53-06a

ERROR CORP. — SBIR Phase II award from Department of Energy.

Phase II SBIR prototype / development signal

  • Phase II is where Department of Energy funds deeper R&D after feasibility. Incumbents with Phase II history are serious competitors on adjacent topics.
  • Use this award as past-performance context and to map customer organizations for STRATFI/TACFI-style transition planning.
  • At $1,645,510, this is a large obligation for typical SBIR Phase sizing — worth reviewing for scope breadth and teaming opportunity.
  • Topic code C53-06a links this award to a solicitation family — search the same topic stem for incumbents and recompete timing.

Informational capture context from public federal data — not legal or bid advice.

Amount
$1,645,510
Agency
Department of Energy
Program / Phase
SBIR · Phase II
Topic
C53-06a
NAICS
Place of performance
MD
Period
2023-04-03 → 2025-04-02

Description

C53-06a-271155Harnessing the quantum state of nature holds tremendous potential for creating new quantum technologies that surpass the capabilities of current systems. To create these new technologies, precise control over the quantum state must be maintained while simultaneously suppressing noise processes that would otherwise lead to decoherence and inaccurate results. This project will address the need for efficient algorithms and software tools that produce quantum control waveforms that suppress decoherence and control errors while implementing a universal set of quantum gates for near-term quantum computing. This research and development will enable commercialization of a recently discovered geometric framework for constructing noise-robust quantum control pulses that offers several advantages over current approaches. To facilitate customization and adoption, our optimal synthesis algorithms are implemented in open-source, machine learning software framework. In Phase I we developed proof-of-concept software for constructing error suppressing quantum gates. Theoretical advancements and extensions of the method to noise sources affecting specific quantum devices were derived. Open-source, interactive tutorials demonstrating feasibility and error-suppression performance of our algorithms were developed. Phase II will broaden the effort to include experimental partners to validate our R&D efforts and to develop industrial-grade, validated software tools required for creating noise-robust quantum algorithms. There is a nascent market for quantum control, calibration, and error suppression software tools for use by commercial customers seeking to improve the performance of their quantum algorithms and create value from near-term quantum computers. By partnering with leading quantum platform providers, the noise-suppressing quantum controls developed in this project will be available to commercial users and researchers increasing quantum algorithm run-times, decreasing cost, and providing more accurate results from near-term quantum computers.