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Find similar grantsFunds research on advanced materials for electronics and photonics, encompassing graphene applications.
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Call with Digital Partnership and TTC countries is sponsored by European Commission — Horizon Europe. Expected Outcome: The focus needs to be on areas where Digital Partnership countries bring strong complementary expertise, including advanced packaging, heterogeneous integration, and photonic chip technologies. The topic would aim to foster collaboration between European and Digital Partnership countries’ R&I communities. Projects are expected to contribute to the following outcomes: • Innovative design and integration concepts for neuromorphic computing systems supporting very low energy consumption, connectivity, embedded functions for mobile applications. • Alternative manufacturing process technologies for semiconductor chips including frontend or backend for heterogenous integration. The technologies should sustain in the mid- and long-term the fast-paced evolution of device performance, miniaturisation and cost, while reducing the environmental footprint. • Very advanced packaging solutions aiming heterogeneous integration of multiple functions and materials for applications in communication (RF, mmW or THz), sensing, actuating, power management and active/passive integration. Programme areas: Horizon Europe (HORIZON), Global Challenges and European Industrial Competitiveness, Digital, Industry and Space
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
Commercialization Competition is sponsored by FuzeHub. This competition helps small manufacturing and technology companies in New York State develop their prototypes, attract investment and customers, and strengthen their go-to-market strategies. It's designed for companies moving from new product/production method to marketplace. Target sectors include advanced manufacturing, biotechnology, cleantech, health/medical, photonics, textiles, consumer products, electronics, agri-tech, robotics, and IoT.
NSF's Trailblazer Engineering Impact Award (NSF 26-502) gives a single principal investigator up to $3 million over three years to pursue a high-risk, field-defining project. The July 24 full-proposal deadline is invitation-only — the real contest happened months earlier. Here is how the three-stage structure works, who is eligible, why the no-co-PI rule is the point, and how to position for the next cycle.
Read articleRET Sites close October 14, 2026 — about nine awards from $5.8 million, capped at $600,000 over three years, with a PI eligibility rule that disqualifies most of the people who write outreach proposals. RET Supplements reach the same money for $15,000 a teacher and are not a competition.
Read articleNSF 26-514, 26-515 and 26-518 put $310 million and up to 850 awards on rolling submission with zero per-PI limits, while chemistry rations two proposals a year and materials rations one. The Engineering directorate ran this experiment eight years ago. When NSF tried it in Earth Sciences, proposal volume fell 59 percent. Here is what that history predicts, and how to use a directorate that is not counting your submissions.
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