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March 10, 2026Journal of CO2 Utilization3 citationsOpen Access

Demonstration of direct air capture of CO2 using microalgae raceway reactors

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RAR. ArragaUniversity of AlmeríaMBM. Barceló-VillalobosInstituto CajalRER. EsteitieMcMaster University

Key Points

  • To explore the effectiveness of microalgae raceway reactors in capturing CO2 directly from the atmosphere.
  • Implemented a direct air capture system in large-scale microalgae raceway reactors.
  • Operated a 600 m² reactor continuously with Scenedesmus sp.
  • Monitored CO2 removal efficiency and biomass productivity under controlled conditions.
  • Achieved up to 95% CO2 removal efficiency from ambient air.
  • Maintained biomass productivity at 12 g m⁻² day⁻¹ with low external carbon concentration.
  • Estimated energy demand for CO2 capture was ≈ 2.9 kWh kg⁻¹, comparable to existing technologies.

Abstract

The continuous increase in atmospheric CO₂ concentration underscores the urgent need for scalable and energy-efficient carbon removal technologies. This study demonstrates, for the first time, the implementation of a tailored Direct Air Capture (DAC) concept integrated within large-scale microalgae raceway reactors, enabling direct CO₂ uptake from ambient air without external gas supply. A 600 m² reactor operated continuously with Scenedesmus sp. maintained stable productivity (12 g m⁻² day⁻¹) under extreme carbon limitation (TIC ≈ 20 mg L⁻¹, pH ≈ 10). Fine-bubble aeration in the sump achieved nearly complete CO₂ removal from air streams, while passive absorption across the raceway and paddlewheel sections provided almost all the carbon required for biomass growth. The overall CO₂ removal efficiency reached 95%, confirming the reactor’s operation as a functional bio-DAC system. The estimated energy demand for air bubbling (≈ 2.9 kWh kg⁻¹ CO₂) is comparable to or below that of current engineered DAC technologies. This approach establishes a low-cost, renewable-compatible, and scalable pathway for atmospheric CO₂ capture that couples negative-emission performance with biomass production, laying the groundwork for decentralized, carbon-negative biotechnological systems contributing to global greenhouse-gas mitigation. • Large-scale microalgae raceways directly capture CO₂ from ambient air. • Sump-based aeration achieves up to 95% CO₂ removal efficiency. • pH-driven carbonate balance governs atmospheric CO₂ absorption and fixation. • Bio-DAC integrates carbon capture with renewable biomass production. • Demonstrated low-energy (≈ 2.9 kWh kg⁻¹ CO₂) pathway for negative emissions.

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Cite This Study

Arraga et al. (2026) studied this question.

synapsesocial.com/papers/69af94c970916d39fea4bb69https://doi.org/10.1016/j.jcou.2026.103376
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