Jacob-Lopes, E., & Franco, T. T. (2013). From oil refinery to microalgal biorefinery. Journal of
CO 2 Utilization, 2, 1–7.
Jacob-Lopes, E., et al. (2009). Development of operational strategies to remove carbon dioxide in
photobioreactors. Chemical Engineering Journal, 153, 120–126.
Jacob-Lopes, E., et al. (2010). Biotransformations of carbon dioxide in photobioreactors. Energy
Conversion and Management, 51, 894–900.
Jajesniak, P., et al. (2014). Carbon dioxide capture and utilization using biological systems:
Opportunities and challenges. Bioprocessing & Biotechniques, 4, 3.
Khalil, A. E. E., & Gupta, A. K. (2017). The role of CO 2 on oxy-colorless distributed combustion.
Applied Energy, 188, 466–474.
Kliphuis, A. M. J., et al. (2010). Photosynthetic efficiency of Chlorella sorokiniana in a turbulently
mixed short light-path photobioreactor. Biotechnology Progress, 26, 687–696.
Koytsoumpa, E. I., et al. (2017). The CO 2 economy: Review of CO 2 capture and reuse
technologies. The Journal of Supercritical Fluids (in press).
Lacava, P. T., et al. (2006). Thermal analysis of an enriched flame incinerator for aqueous residues.
Energy, 31, 528–545.
Linde Group. (2017). Available at: http://www.linde-engineering.com/en/index.html.
Leung, D. Y. C., et al. (2014). An overview of current status of carbon dioxide capture and storage
technologies. Renewable and Sustainable Energy Reviews, 39, 426–444.
Medipally, S. R., et al. (2015). Microalgae as sustainable renewable energy feedstock for biofuel
production. BioMed Research International, 2015, 519513.
Molina-Grima, E., et al. (2001). Tubular photobioreactor design for algal cultures. Journal of
Biotechnology, 92, 113–131.
Moncada, J., et al. (2016). Design strategies for sustainable biorefineries. Biochemical Engineering
Journal, 116, 122–134.
Muñoz, J., et al. (2004). Effects of ionic strength on the production of short chain volatile
hydrocarbons by Dunaliella salina (Teodoresco). Chemosphere, 54, 1267–1271.
Normann, F., et al. (2009). Emission control of nitrogen oxides in the oxy-fuel process. Progress
in Energy and Combustion Science, 35, 385–397.
Olajire, A. A. (2010). CO 2 capture and separation technologies for end-of-pipe applications—a
review. Energy, 35, 2610–2628.
Pawar, S. (2016). Effectiveness mapping of open raceway pond and tubular photobioreactors for
sustainable production of microalgae biofuel. Renewable and Sustainable Energy Reviews, 62,
640–653.
Raeesossadati, M. J., et al. (2014). CO 2 bioremediation by microalgae in photobioreactors: Impacts
of biomass and CO 2 concentrations, light, and temperature. Algal Research, 6, 8–85.
Raso, S., et al. (2012). Effect of oxygen concentration on the growth of Nannochloropsis sp. at low
light intensity. Journal of Applied Phycology, 24, 863–871.
Razzak, S. A., et al. (2017). Biological CO 2 fixation with production of microalgae in wastewater
—a review. Renewable and Sustainable Energy Reviews, 76, 379–390.
Santos, A. B., et al. (2016). Biogeneration of volatile organic compounds produced by
Phormidium autumnale in heterotrophic bioreactor. Journal of Applied Phycology, 28, 1561–
1570.
Scheffknecht, G., et al. (2011). Oxy-fuel coal combustion—a review of the current state-of-the-art.
International Journal of Greenhouse Gas Control, 5, 16–35.
Schirmer, A. et al. (2010). Microbial Biosynthesis of Alkanes. Science, 329, 559–562.
Smith, L. M., et al. (2012). Quantifying variation in water column photosynthetic quotient with
changing field conditions in Narragansett Bay, RI, USA. Journal of Plankton Research, 34,
437–442.
Spilling, K., et al. (2015). Interaction effects of light, temperature and nutrient limitations (N, P and Si)
on growth, stoichiometry and photosynthetic parameters of the cold-water diatom Chaetoceros
wighamii. PLoS One, 10, 1–18.
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