Abstract
Hydrogen-oxidizing bacteria (HOB) offer a promising route for sustainable single-cell protein (SCP) production from CO₂ and renewable electricity, but most studies remain limited to low-productivity laboratory scale. Here, we developed a 100 L pilot-scale electrolysis-fermentation ex-situ coupled system, in which H₂ and O₂ generated by water electrolysis were directly supplied to a gas fermentation reactor for autotrophic CO₂ fixation by a HOB community under ambient pressure. Through optimizing the operating parameters and implementing process intensification strategies, the system achieved a maximum biomass productivity of ∼12 g CDW L−1 day−1, with an average productivity of 10.8 ± 0.6 g CDW L−1 day−1, higher than many previously reported laboratory-scale systems. The biomass contained ∼60% crude protein with an indispensable amino acid profile comparable to fishmeal. Preliminary techno-economic analysis and carbon emission assessment further revealed that although the current pilot-scale process remained marginally unprofitable (−¥2150 t−1 SCP), it exhibited a very low carbon emission per ton of product (7.2% of fishmeal and 30% of soybean meal). Overall, this study demonstrates the engineering feasibility and environmental advantage of electricity-driven CO₂-to-protein production at the pilot scale, providing an important step toward large-scale sustainable protein manufacturing.
| Original language | English |
|---|---|
| Article number | 179749 |
| Journal | Chemical Engineering Journal |
| Volume | 545 |
| DOIs | |
| State | Published - 1 Oct 2026 |
| Externally published | Yes |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- CO₂ valorization
- Electrolysis-fermentation coupling
- Hydrogen-oxidizing bacteria
- Pilot-scale production
- Single-cell protein
- Techno-economic and carbon footprint analysis
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