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Find similar grantsRobust Quantum Sensors (RoQS) Program - Phase 1 is sponsored by Defense Advanced Research Projects Agency (DARPA). DARPA's RoQS program aims to prototype quantum sensing technology to provide localized, non-space-based alternatives to GPS for the U. S.
military.
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Department of War organization. How to develop sensors that resist performance degradation The Robust Quantum Sensors (RoQS) program will advance quantum sensing technology for use on Department of Defense platforms. While quantum sensors have shown exceptional capabilities in controlled settings, their performance often declines in dynamic environments due to factors such as vibrations and electromagnetic interference.
RoQS seeks to address these challenges by developing sensors that resist performance degradation in real-world conditions. Proposal abstracts must be submitted by Feb. 20, 2025, at 4 p.
m. ET, and full proposals are due March 31, 2025, at 4 p. m.
ET. Further information can be found in the Program Solicitation on SAM. gov. Proposers Day presentation From fragile to field-ready: RoQS program launches first phase Taking quantum sensors out of the lab and into defense platforms
According to the current listing, eligibility includes: Organizations capable of developing and prototyping quantum sensing technology for alternative PNT. Confirm the full requirements in the official notice before applying.
Robust Quantum Sensors (RoQS) Program - Phase 1 is funded by Defense Advanced Research Projects Agency (DARPA). Verify program details on the funder's official page before applying.
Start from the official opportunity page linked in this listing — it carries the sponsor's submission instructions.
Large-Scale Photonic Quantum Computing Platform Technologies is sponsored by European Commission — Horizon Europe. Expected Outcome: This action will establish a strategic European initiative to develop scalable, modular, and interoperable photonic quantum computing platforms. Proposals for this topic are expected to address and provide credible solutions to at least two major technical roadblocks currently limiting the advancement of photonic quantum computing such as: The lack of deterministic, high-efficiency photonic entanglement and loss-tolerant architectures suitable for fault-tolerant scaling The absence of a standardised, integrated control stack combining photonic hardware, firmware, and system software with reliable benchmarking across platforms Project results are expected to contribute to the following expected outcomes: By 2028, demonstration of a photonic NISQ processor with ≥100 photonic qubits, integrating deterministic single-photon sources, low-loss waveguides, on-chip detectors, and a firmware stack (scheduler, controller, compiler), validated via hardware-agnostic benchmarks and hybrid photonic-HPC applications demonstrating classical-quantum crossover By 2030, delivery of a full-stack, high-connectivity photonic quantum computer, with modular scalability, integrated on-chip and fibre-based interconnects, and high-fidelity gates (e.g. error rates ≤10⁻³) with an indicative target of 1 000 photonic qubits, laying the groundwork for prototype demonstrations of quantum utility on industrially relevant workloads. System-level interoperability and standardisation, with published interface specifications across photonic quantum hardware and software stacks including packaging, APIs, compiler interfaces, and cloud protocols compatible with telecom wavelengths Validation of entanglement distribution across modules through standardised protocols and field-demonstration of interconnected photonic quantum processors Acceleration of industrialisation and commercialisation, including a roadmap for pilot manufacturing lines, quality assurance protocols, and development of a sovereign European supply chain for photonic quantum technologies Demonstration of project results through a concrete use case provided by a major end-user partner within the consortium, validating the platform’s relevance and performance under real operational constraints. Scope: Proposals for this topic are expected to be led by a startup with demonstrated expertise in photonic quantum computing. The startup should collaborate with relevant academic, industrial, and RTO partners to ensure both technological depth and market orientation. The consortium should also include at least one major end-user whose operational needs will shape the platform design, and whose infrastructure will host the field demonstration of the project’s results. Proposals should implement a coordinated, durable R&I programme that integrates hardware, software, system architecture, and application-level use cases. Activities should include: Platform development advancing open, scalable photonic quantum processors with semiconductor and/or glass-based photonic chips, integrated control electronics, firmware, and robust error mitigation and correction schemes System integration realising modular quantum nodes with photonic interconnects and validating scalable architectures under realistic noise, loss, and control constraints Software stack co-design integrating low-level firmware, compilers, hybrid algorithms, and network APIs to demonstrate application-level quantum advantage and HPC interoperability Proposals are expected to build upon prior Quantum Flagship results and demonstrate capacity to contribute actively to the governance and strategic coordination of the EU quantum computing ecosystem, including synergies with STEP, Chips JU, IPCEI projects and EuroHPC. Technology Readiness Level - Technology readiness level expected from completed projects Activities are expected to start at TRL 4 and achieve TRL 7 by the end of the project – see General Annex B. Programme areas: Horizon Europe (HORIZON), Global Challenges and European Industrial Competitiveness, Digital, Industry and Space Keywords: Advanced computing, Computer and information sciences, High performance computing, Quantum Technologies (e.g. computing and communication), EuroHPC, High Performance Computing, Photonics, Quantum Computing
Quantum Leap Challenge Institute for Robust Quantum Simulation (NSF RQS) is sponsored by National Science Foundation (NSF). Led by the University of Maryland, this institute focuses on pioneering new ways to build, use, and validate quantum simulations for chemistry, nuclear and high-energy physics, materials science, computer science, and other areas. Their work includes creating and deploying new methods to verify the correctness of quantum simulations too complex for classical methods, and exploring new techniques for quantum computing, including new algorithms and software for faster and more efficient computation.
DPA26BZ06-DV023 is a Direct-to-Phase-II SBIR paying $700,000 over 18 months plus a $500,000 option. The physics demands 256x more transmit power than the systems that qualify you to compete, and DARPA will not accept modeling alone as proof. Here is the eligibility wall, the five engineering problems, and who can realistically win it before the October 21 close.
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Read articleDPA26BZ06-DV026 offers $300,000 at Phase I or $1,800,000 as a single Direct-to-Phase-II tranche with no options. The deliverable is a simulated auction market that measures whether AI agents deceive, collude, or manipulate the humans they serve — measured entirely from the outside. Here is the 90% efficiency gate, the team composition most bidders will get wrong, and why this topic sits in DARPA's biology office.
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