1,000+ Opportunities
Find the right grant
Search federal, foundation, and corporate grants with AI — or browse by agency, topic, and state.
This listing may be outdated. Verify details at the official source before applying.
Find similar grantsThis funding opportunity aims to accelerate the deployment of technologies that improve product and material circularity to support secure and sustainable supply chains.
Get a weekly digest of new grants like this
A free weekly digest of new foundation and federal funding opportunities as they're added to Granted. Unsubscribe anytime.
Or search similar grants →According to the current listing, eligibility includes: Education institutions, local governments, non-profits, state agencies, and tribes. DOE encourages potential applicants to consider creating or joining a team. Confirm the full requirements in the official notice before applying.
The current listing shows up to $12.5 million. Verify award ceilings, matching requirements, and allowable costs in the official notice.
The Circular Supply Chains Accelerator (DE-FOA-0003512) is funded by U.S. Department of Energy (DOE) - Advanced Materials and Manufacturing Technologies Office (AMMTO). Verify program details on the funder's official page before applying.
Past winners and funding trends for this program
Bio-based chemicals and/or materials from woody residues is sponsored by European Commission — Horizon Europe. Expected Outcome: Successful proposals will contribute to the EU Forest Strategy for 2030, the EU Biodiversity Strategy 2030, the Carbon Removal Certification Framework Regulation, the updated EU Bioeconomy Strategy and the upcoming Circular Economy Act. Projects’ results are expected to contribute to the following expected outcomes: Increased availability of bio-based chemicals and/or bio-based materials from woody residues. Increased sustainability of forest-based value chains in cooperation with local forestry owners/cooperatives. Improved end-of-life (EoL) of bio-based products from woody residues. Scope: Besides thin branches, leaves and needles, which are usually left on the soil to maintain the long-term viability of the forest and soil in good condition, forestry and forest industry operations generate large amounts of woody residues which are typically used for energy or low value applications. Established process technologies for round wood and wood chips are not well suited for other streams from the forest industry which are abundantly available at production sites and could be exploited as a source of feedstock for the bio-based industries. Thus, there is the need to demonstrate techno-economic feasibility of innovative valorisation pathways to increase the value which can be derived from residues from the wood and forest-based industries while also improving sustainability compared to state-of the art valorisation routes. Proposals under this topic should: Demonstrate (TRL 6 and above) innovative technologies to obtain bio-based chemicals and/or materials from woody residues. Feedstock in scope includes woody residues generated at forestry and/or at industrial processing sites, including, but not limited to, bark, sawdust or residues from wood harvesting and processing. Demonstration should cover the optimal combination of innovative and scalable technologies aimed at maximising yield, selectivity and productivity across upstream pretreatment/fractionation, further conversion into chemicals/materials, separation/purification processes. The proposed technologies should address flexibility to feedstock quality variability. Validate (TRL 5 and above) the obtained chemicals/materials into end products. Assess the products’ performance and ensure that they fulfil technical performance requirements according to the end market application(s). Apply the eco-design principles, in line with the Ecodesign for Sustainable Products Regulation , to the end-product(s) for sustainable EoL and test it at TRL5 and above. Incineration is not in scope. In addition to the specific requirements applicable for the type of action, as described in section 2.2.3.1 of the CBE JU Annual Work Programme 2026 [1] , proposals under this topic should: As part of the multi-actor approach (MAA), ensure close collaboration with local forest owners and managers, including cooperatives and/or sectorial associations. Optimise biomass supply chain models, including sourcing, storage and/or transport as relevant for selected woody residues. Include a task to apply the SSbD framework, developed by the European Commission for the assessment of targeted chemicals/materials and derived bio-based product(s). For more information on the SSbD framework and criteria, refer to Safe and sustainable by design . Ensure complementarities with past and ongoing R&I projects addressing similar challenges, including projects funded under Horizon 2020/Horizon Europe (under Cluster 6 and other Clusters of Horizon Europe) and BBI JU/CBE JU projects. [1] https://www.cbe.europa.eu/reference-documents Programme areas: Global Challenges and European Industrial Competitiveness, Food, Bioeconomy Natural Resources, Agriculture and Environment, Bio-based Innovation Systems in the EU Bioeconomy, Horizon Europe (HORIZON) Keywords: Forest ecosystem services, Forestry, Forestry, biomass production (e.g. for biofuels), Materials engineering, bio-based chemicals, bio-based materials, bio-conversion, biomass logistics, biomass supply, eco-design, forest management, forestry, safe and sustainable by design, woody residues, STEP-Biotech
Biotech routes for valorisation of residual biomass is sponsored by European Commission — Horizon Europe. Expected Outcome: Successful proposals will contribute to the implementation of the EU initiative on Biotechnology and Biomanufacturing and the EU Life Sciences Strategy as well as the updated EU Bioeconomy Strategy, the Clean Industrial Deal, the European Chemical Industry Action Plan, the upcoming EU Biotechnology and Circular Economy Acts. Projects results are expected to contribute to the following expected outcomes: Increased added value of residual biomass for biorefinery applications. Availability of a wider portfolio of sustainable bio-based products via industrial biotech. Robust, scalable and efficient biotech process(es) applicable to residual biomass. Scope: Diversifying biomass feedstock resources for bio-based products is key to contribute to resilience and strategic autonomy of bio-based operations. Industrial biotechnologies have showcased that they can play a key role to address residual biomass into valuable bio-based products. However, scaling up from research to demo scale requires addressing systemic and technical challenges. This entails the integration of adequate pretreatment and conversion processes, tailored to the targeted residual biomass and its composition variability, in order to achieve high yield, titre and selectivity. At the same time, it requires that these processes are scalable and sustainable. Moreover, effective logistics are needed to mobilise the residual biomass, requiring cooperation with primary producers, waste management operators and other biomass providers. Proposals under this topic should: Demonstrate (at least TRL 6) efficient biotechnology based processes to convert residual biomass streams into bio-based chemicals, intermediates, polymers, materials, ingredients [1] and/or enzymes. The topic focuses on processes in which biotechnology is the key enabling technology; the integration of supporting unit operations based on technologies other than biotechnology is in scope. Optimisation of selected cells, enzymes and/or microorganisms, including microbiomes, is also in scope. The feedstock in scope includes: Forestry and agricultural residues and/or side streams from the processing of forestry and agricultural biomass (including livestock-based ones such as manure and animal byproducts), residues from aquatic biomass, including from fisheries, micro/macro algae production and aquaculture, urban and/or industrial bio-based waste and side-streams (including food industry waste and side-streams, cellulose from post-consumer and post-industrial waste, urban biowaste and sewage sludge, and other bio-based waste/side-streams from industrial operations including wood and pulp and paper industry), mixed streams from the above. Integrate optimised biomass pretreatment/fractionation processes tailored to selected residual biomass and optimise (energy)-efficient separation and/or purification process step(s) across the value chain. The valorisation of by-products and side streams across the value chain via the cascading approach is in scope. Validate (at TRL 5 and above) conversion (or use) of biorefinery product(s) into end-products proving to fulfil market requirements for selected applications sectors. Address resource efficiency and circularity. When pursuing circular models, ensure that neither pathogens nor contaminants are injected back in the loop, to avoid negative effects on human health and the environment. In addition to the specific requirements applicable for the type of action, as described in section 2.2.3.1 of the CBE JU Annual Work Programme 2026 [2] , proposals under this topic should: Under the multi-actor approach (MAA), ensure the sufficient involvement of feedstock producers/managers for residual feedstock supply. Optimise logistic models (including sourcing, storage and transport) of residual feedstock, minimising distances and costs. Ensure seamless integration with biomass providers, while promoting win-win business models. Perform a risk assessment on impacts, p Programme areas: Global Challenges and European Industrial Competitiveness, Food, Bioeconomy Natural Resources, Agriculture and Environment, Bio-based Innovation Systems in the EU Bioeconomy, Horizon Europe (HORIZON) Keywords: Applied and industrial chemistry, Bioprocessing technologies (industrial processes relying on biological agents to drive the process) biocatalysis, fermentation, Industrial bioengineering, Industrial biotechnology, bio-based chemicals, bio-based ingredients, bio-based materials, bio-based polymers, bio-based products, bio-conversions, biotechnology, STEP-Biotech
Understanding biomass flows in Europe is sponsored by European Commission — Horizon Europe. Expected Outcome: Project results are expected to contribute to all the following expected outcomes: enhanced understanding of the environmental, social and economic potential of the supply of different biomass types (from local to international perspectives), as well as its sustainability implications, including biodiversity and (air, water and soil) pollution, synergies and tensions; enhanced capacity of private and public stakeholders to increase resource efficiency in utilising primary and secondary biomass as well as biomass processing and use, including through digital tools which may involve artificial intelligence and remote sensing, and roadmaps towards sustainable biomass management; without undermining food security; enhanced support to businesses and administrations that optimise biomass supply, processing, and use, such that ecosystems and biodiversity are protected and restored, emissions of greenhouse gases and pollutants reduced, and human needs for biomass satisfied in sufficient and fair way. Scope: There is a need to better understand the production and use of biomass, a limited resource, in its various types. Bioeconomy, and biomass as its essential feedstock, provides solutions on various dimensions (environmental, social and economic). However, there are biomass-related challenges to overcome: the EU forest carbon sink is below the target and declining in most countries and the need to restore ecosystems and halt biodiversity loss [1] . This implies that biomass supply is partly unsustainable. Simultaneously, companies see themselves challenged to satisfy the growing demand for biomass in the future. There are solutions to increase the sustainable production, including to reduce pollutants, and adjust the demand: e.g. better valorise unused or under-exploited sustainable biomass and degraded land, apply new breeding techniques and increase resource efficiency through circular design, new business models, consumption, recycling or repair. There is a need to better understand where biomass valorisation can be improved, to ensure local or regional added value increases and to drive innovative and competitive business solutions. For an optimal biomass production and effective use, matching supply and demand in the local or regional context, a better and more robust understanding of actual biomass flows is a fundamental prerequisite. Proposals should address all the following activities: Improve and develop innovative, administration-light biomass monitoring and modelling/assessment methods and digital tools at European level (regional, national, and continental scale) to optimise biomass flows, paying particular attention to areas with untapped (sustainable) biomass resources, in close cooperation with stakeholders. Provide an updated estimate of biomass supply and demand today and projected until 2050 at national and EU level, including associated countries, considering the quality of biomass, their potential use, the sustainability and risks (e.g. spread of pathogens) of supplied biomass, as well as potential non-satisfied (non-)industrial demand due to the limitation of availability of sustainable biomass. The 2050 outlook should be accompanied by scenarios on EU’s future bioresources regarding supply and demand. Test and demonstrate, in cooperation with stakeholders, the feasibility of biomass reporting in test regions of at least 10 countries across Europe with different potential of biomass supply. The European Commission’s Joint Research Centre (JRC) may participate as member of the consortium selected for funding since the monitoring and assessment tools developed may contribute to the EU level assessment of biomass flows of the Knowledge Centre for Bioeconomy. Proposals are encouraged to work together with additional relevant initiatives including those of the Circular Biobased Europe Joint Undertaking, the European Circular Economy Stakeholder Platform, the BIOEAST Initiative; build on results from Programme areas: Horizon Europe (HORIZON), Global Challenges and European Industrial Competitiveness, Food, Bioeconomy Natural Resources, Agriculture and Environment, Bio-based Innovation Systems in the EU Bioeconomy Keywords: Bioeconomy, Blue Economy, bio-economies, bio-economy, bioeconomies, bioeconomy, biological, biomass, circular, flows, hub, materials, region, renewable, resource, resources, sustainability, sustainable
On July 22, 2026, the Department of Energy opened its FY26 Genesis Mission SBIR/STTR round — roughly 40 Phase I awards across four topic areas (biotech, quantum, materials, and autonomous labs), a $147 million Phase II pool, and a September 10 pitch deadline. This is how small businesses get inside the $5 billion Genesis Mission. Here is what each topic funds, how the money and timeline work, and the concrete strategy to compete.
Read articleTitle III of the Defense Production Act lets the Pentagon hand non-dilutive capital to companies that expand domestic production of defense-critical materials and manufacturing — through a white-paper-first pathway run by the Air Force Research Laboratory (FA8650-19-S-5010) rather than a conventional grant competition. But the core DPA authorities sunset September 30, 2026 absent reauthorization, and the standing white-paper window has moved in and out of suspension. Here is how the Title III mechanism actually works, why it rewards companies that lead with a supply-chain vulnerability, and how to position before the authority cliff.
Read articleThe Labor Department's RESTART grants closed April 15, but the $81 million program is a map, not just a deadline. Up to 20 awards, $5.1M ceilings, and a priority list — AI infrastructure, nuclear, advanced manufacturing, domestic minerals — that signals the shape of the next workforce funding cycle. Here is how to read it and position for what comes next.
Read article