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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
Diversification of nutritional food ingredient sources for increased EU resilience and strategic autonomy 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 upcoming EU Biotechnology Act and EU Circular Economy Act. Projects’ results are expected to contribute to the following expected outcomes: Full industrial scale biorefinery and related value chain(s) for the production of nutritional food ingredients. Resilience and strategic autonomy of EU food sectors via diversification of nutritional food ingredient sources. Increased environmental sustainability of food sectors (e.g. addressing issues like land use, water use, energy consumption, nitrogen cycle, other nutrients, etc.). Improved consumers awareness and acceptance of nutritional food ingredients from alternative sources, contributing to sustainable healthy diets. Scope: Human nutrition is a key area where the bio-based industries can play an important role in addressing the present societal and climate challenges. Considerable attention is given to the utilisation of alternative sources of proteins, fibres and oils/fats, due to the increasing world population and the pressure on finite natural resources. Many sources for food ingredients, alternative to agricultural crops, exist and have been successfully piloted across the EU. However, efforts are needed to scale up sustainable processes to achieve adequate or even improved nutritional properties, ensure safety and consumers/end users acceptance, while achieving cost competitiveness. Proposals under this topic should: Demonstrate (at TRL 8) the efficient production of nutritional ingredients for food applications. Proteins, lipids, specialty carbohydrates, and fibres are in scope. Target at least one of these as the main product driving the business case. Structural or functional ingredients such as colourants, preservatives, stabilisers, texturisers, enzymes are not in scope as the main product. Synergistic co-production of multiple and different food and feed ingredients and other bio-based products is also in scope following the cascading approach. All sources of bio-based feedstock [1] are in scope. Direct production of food from food crops, livestock, fisheries and aquaculture is not in scope. The use of industrial grade feedstock [2] from agricultural crops is in scope for conversion into food grade ingredients. Validate (at TRL 6 and above) the use of the obtained nutritional food ingredient(s) into the formulation of at least 1 food product proving quality, stability, nutritional and sensorial properties. Additional aspects related to prevention of intolerances/allergies, improved palatability and digestibility, health benefits, etc. are also in scope depending on the ingredient(s), formulation(s) and product(s) developed. Address resource efficiency and circularity aspects to increase economic and socio-environmental added value. When pursuing circular models, ensure that neither pathogens nor contaminants are injected back in the loop, to avoid negative toxicological effects. 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 [3] , proposals under this topic should: Assess the safety of developed nutritional food ingredients, in line with EU regulatory requirements and EFSA guidance documents. Moreover, identify potential EU regulatory gaps and propose recommendations to relevant EU policymakers on how to better support food ingredient companies (including startups and scaleups) in addressing EFSA risk assessment. As part of the multi-actor approach (MAA), involve end-users (including consumers) and other relevant actors starting from the early stages to gather input, raise awareness and ultimately foster market acceptance of the targeted end-products and incorporate insights into product development. Ensure complementarities and avoid overlaps with 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: Agricultural biotechnology and food biotechnology, Agricultural engineering, food safety, Food biotechnology, alternative sources, carbohydrates, circular economy, fibres, food ingredients, food products, food safety, lipids, nutrition, proteins, STEP-Biotech
High-performance, circular-by-design, bio-based thermosets is sponsored by European Commission — Horizon Europe. Expected Outcome: Successful proposals will contribute to the Circular Economy Action Plan, the Chemicals Strategy for Sustainability, the Ecodesign for Sustainable Products Regulation, the Chemical Industry Action Plan, and the Clean Industrial Deal. Projects results are expected to contribute to the following expected outcomes: Wider availability of bio-based thermoset materials meeting high technical performance requirements. Improved circularity of thermosets and downstream application(s) against specified market benchmarks taking into account production, use and EoL. Scope: Bio-based thermosets have a proven capability to achieve challenging technical performances for high demanding applications including transport, energy, electronics, among others. However, due to their cross-linking nature, the recycling of thermoset materials (including composites) is more challenging without compromising the technical performances. Thus, eco-designing bio-based thermoset materials to be both circular and high-performing remains a significant challenge in scaling-up towards competitiveness and higher sustainability. Some of the key challenges to address for bio-based thermosets include processability during manufacturing (including aspects of thermal stability), technical performance (e.g., mechanical properties, fire resistance, corrosion resistance, durability) of the end-product along its life cycle, durability, EoL and circularity, including recycling, re-using or upcycling solutions. Proposals under this topic should: Demonstrate (at least at TRL 6) the resource-efficient production of innovative bio-based thermosets, targeting both high performances and circularity. Functionalisation by introducing bio- or non-bio-based additives is also in scope. Demonstrate (at least at TRL 6) the developed bio-based thermosets conversion into circular end-products, proving that technical performance (e.g., mechanical and thermal stability properties, fire resistance, corrosion resistance, durability, etc.) meets market requirements and is compatible with existing manufacturing equipment. Apply eco-design principles, in line with the Ecodesign for Sustainable Products Regulation , to enable circularity of the thermoset materials, addressing major challenges of EoL for the targeted end-use. Test the selected EoL alternatives (at TRL 5 and above). Landfilling or incineration are out of 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), involve end-users, including consumers when applicable, starting from the early stages to assess market acceptance of the targeted end-products and incorporate insights into product development. Include a task to apply the SSbD framework, developed by the European Commission for the assessment of targeted bio-based thermosets and derived products. 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: Composites (including laminates, reinforced plastics, cermets, combined natural and synthetic fibre fabrics filled composites), Materials engineering (biomaterials, metals, ceramics, polymers, composites, etc.), New materials: oxides, alloys, composite, organic-inorganic hybrid, nanoparticles, Polymers and plastics, bio-based products, bio-based thermosets, circularity, composites, eco-design, recycling, safe and sustainable by design, upcycling, STEP-Biotech
The RUS Powering Affordable Reliable Technology (PART) Energy Program takes Letters of Interest until October 9, 2026. Up to 40% of each loan can be forgiven, awards run $1M to $100M, and USDA describes eligible generation as hydro, geothermal, and biomass — even though Section 317 of the RE Act names solar and wind.
Read articleOn August 24, 2026, DOE and SBA signed a memorandum of agreement creating the Small Business Investment Company-Energy Initiative, pointing a $58 billion SBA-leveraged investment program at DOE's technology priorities. No application, no NOFO, no deadline. Here is how SBIC capital actually works, why a January 2026 rule change made this possible, and what a company sitting on a DOE Phase II award should do about it.
Read articleThe Hydrocarbons and Geothermal Energy Office's University Training and Research program funds coal, oil and gas, and geothermal R&D at U.S. colleges and universities — but every proposal must include a non-academic partner and must build training modules that outlive the award. The LOI deadline is October 1, 2026, with full applications 15 days later. Here is what that compressed window means and why the workforce framing changes what a competitive proposal looks like.
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