Humanity faces an urgent, converging set of crises: climate change, resource depletion, and a waste management challenge of staggering scale. The global economy remains overwhelmingly dependent on fossil carbon, not only for energy, but for the chemicals, materials, and fuels that underpin modern industry. Transitioning away from this dependency is no longer optional. The European Green Deal, the EU's defining policy framework for the coming decades, sets the ambition of making Europe the first climate-neutral continent by 2050, with decarbonization of industry and the consolidation of a circular bioeconomy as explicit priorities.
Biorefineries (facilities that convert biological feedstocks into a spectrum of valuable products) are widely recognized as a cornerstone technology for this transition. They hold the potential to replace fossil-derived chemicals with bio-based equivalents, while simultaneously addressing a massive and largely untapped resource: organic waste. Globally, over 88 million tons of municipal organic waste and up to 9,400 million tons of agricultural lignocellulosic residues are generated annually. These are not just disposal problems, they also represent an enormous reservoir of carbon that, if valorized, could supply significant portions of the demand for bio-based chemicals and fuels. The carboxylates market alone (one family of platform chemicals producible from biomass) is projected to reach ~€16 billion by 2028.
Yet realizing this potential requires solving a fundamental technical obstacle. The dominant fraction of globally available waste biomass is lignocellulosic (woody, fibrous, and chemically recalcitrant) resistant to most direct biological conversion routes. Gasification into syngas (CO, H2, CO2) offers a way through: it homogenizes any organic feedstock, regardless of origin or composition, into a clean, pathogen-free gas stream that microorganisms can ferment. This syngas fermentation route is one of the few pathways capable of unlocking the full breadth of waste biomass at scale. However, it remains in an early technological stage, held back by poor gas-liquid mass transfer, low product selectivity, and the absence of integrated process designs capable of reaching industrially relevant yields.
Syn2Value addresses precisely this gap. The project will develop and validate an integrated platform coupling high-performance syngas fermentation with anaerobic chain elongation, engineered to convert lignocellulosic waste into medium-chain carboxylates (MCC, C6–C12) increasing production rates and selectivity. To achieve this, Syn2Value combines novel bioreactor engineering, tailored microbial co-cultures, and in-situ product extraction into a coherent, scalable process.
The significance of this work extends beyond the laboratory. A validated syngas-to-MCC platform would provide European industry with a competitive, fossil-free route to a family of high-value chemicals currently derived from petroleum, directly advancing EU decarbonization, circular economy, and bioeconomy objectives. Moreover, the Syn2Value concept aims at demonstrating that intractable organic waste can become a feedstock for the industries of tomorrow.