Olguín, E., Galicia, S., Mercado, G., & Pérez, T. (2003). Annual productivity of Spirulina
(Arthrospira) and nutrient removal in a pig wastewater recycling process under tropical
conditions. Journal of Applied Phycology, 15, 249–257.
Perez-Garcia, O., & Bashan, Y. (2015). Microalgal heterotrophic and mixotrophic culturing for
bio-refining: From metabolic routes to techno-economics. In A. Prokop, R. K. Bajpai, & M.
E. Zappi (Eds.), Algal biorefineries volume 2: Products and refinery design (pp. 61–132).
Switzerland: Springer International Publishing.
Perez-Garcia, O., Escalante, F. M. E., de-Bashan, L. E., & Bashan, Y. (2011). Heterotrophic
cultures of microalgae: Metabolism and potential products. Water Research, 45, 11–36.
Pleissner, D., Lam, W. C., Sun, Z., & Lin, C. S. K. (2013). Food waste as nutrient source in
heterotrophic microalgae cultivation. Bioresource Technology, 137, 139–146.
Pruvost, J., Le Borgne, F., Artu, A., & Legrand, J. (2017). Development of a thin-film solar
photobioreactor with high biomass volumetric productivity (AlgoFilm©) based on process
intensification principles. Algal Research, 21, 120–137.
Pulz, O., & Scheibenbogen, K. (1998). Photobioreactors: Design and performance with respect to
light energy input. Advances in Biochemical Engineering/Biotechnology, 59, 123–152.
Queiroz, M. I., Hornes, M. O., Silva-Manetti, A. G., & Jacob-Lopes, E. (2011). Single-cell oil
production by cyanobacterium Aphanothece microscopica Nägeli cultivated heterotrophically
in fish processing wastewater. Applied Energy, 88, 3438–3443.
Ramírez-Mérida, L. G. R., Zepka, L. Q., & Jacob-Lopes, E. (2017). Current production of
microalgae at industrial scale. In J. C. M. Pires (Ed.), Recent advances in renewable energy
(pp. 242–260). Sharjah: Bentham Science Publishers.
Raslavičius, L., Striūgas, N., & Felneris, M. (2018). New insights into algae factories of the future.
Renewable and Sustainable Energy Reviews, 81, 643–654.
Raso, S., van Genugten, B., Vermuë, M., & Wijffels, R. H. (2012). Effect of oxygen concentration
on the growth of Nannochloropsis sp. at low light intensity. Journal of Applied Phycology, 24,
863–871.
Rawat, I., Kumar, R. R., Mutanda, T., & Bux, F. (2013). Biodiesel from microalgae: A critical
evaluation from laboratory to large scale production. Applied Energy, 103, 444–467.
Richmond, A. (1990). Large scale microalgal culture and applications. In F. E. Round & D.
J. Chapman (Eds.), Progress in phycological research (pp. 269–330). Britol: Biopress Ltd.
Richmond, A., & Cheng-Wu, Z. (2001). Optimization of a flat plate glass reactor for mass
production of Nannochloropsis sp. outdoors. Journal of Biotechnology, 85, 259–269.
Roso, G. R., Santos, A. M., Zepka, L. Q., & Jacob-Lopes, E. (2015). The econometrics of
production of bulk oil and lipid extracted algae in an agroindustrial biorefinery. Current
Biotechnology, 4, 547–553.
San Pedro, A., González-López, C. V., Acién, F. G., & Grima, E. M. (2014). Outdoor pilot-scale
production of Nannochloropsis gaditana: Influence of culture parameters and lipid production
rates in tubular photobioreactors. Bioresource Technology, 169, 667–676.
Santos, A. M., Deprá, M. C., Santos, A. M., Zepka, L. Q., & Jacob-Lopes, E. (2015). Aeration
energy requirements in microalgal heterotrophic bioreactors applied to agroindustrial
wastewater treatment. Current Biotechnology, 4, 249–254.
Scott, S. A., Davey, M. P., Dennis, J. S., Horst, O., Howe, C. J., Lea-Smith, D. J., et al. (2010).
Biodiesel from algae: Challenges and prospects. Current Opinion in Biotechnology, 21,
277–286.
Sierra, E., Acién, F. G., Fernández, J. M., García, J. L., González, C., & Molina, E. (2008).
Characterization of a flat plate photobioreactor for the production of microalgae. Chemical
Engineering Journal, 138, 136–147.
Singh, R. N., & Sharma, S. (2012). Development of suitable photobioreactor for algae production
—a review. Renewable and Sustainable Energy Reviews, 16, 2347–2353.
Su, H., Zhou, X., Xia, X., Sun, Z., & Zhang. Y. (2017a). Progress of microalgae biofuel’s
commercialization. Renewable and Sustainable Energy Reviews, 74, 402–411.
Su, Y., Song, K., Zhang, P., Su, Y., Cheng, J., & Chen, X. (2017b). Progress of microalgae
biofuel’s commercialization. Renewable and Sustainable Energy Reviews, 74, 402–411.
32
M. M. Maroneze and M. I. Queiroz
(Arthrospira) and nutrient removal in a pig wastewater recycling process under tropical
conditions. Journal of Applied Phycology, 15, 249–257.
Perez-Garcia, O., & Bashan, Y. (2015). Microalgal heterotrophic and mixotrophic culturing for
bio-refining: From metabolic routes to techno-economics. In A. Prokop, R. K. Bajpai, & M.
E. Zappi (Eds.), Algal biorefineries volume 2: Products and refinery design (pp. 61–132).
Switzerland: Springer International Publishing.
Perez-Garcia, O., Escalante, F. M. E., de-Bashan, L. E., & Bashan, Y. (2011). Heterotrophic
cultures of microalgae: Metabolism and potential products. Water Research, 45, 11–36.
Pleissner, D., Lam, W. C., Sun, Z., & Lin, C. S. K. (2013). Food waste as nutrient source in
heterotrophic microalgae cultivation. Bioresource Technology, 137, 139–146.
Pruvost, J., Le Borgne, F., Artu, A., & Legrand, J. (2017). Development of a thin-film solar
photobioreactor with high biomass volumetric productivity (AlgoFilm©) based on process
intensification principles. Algal Research, 21, 120–137.
Pulz, O., & Scheibenbogen, K. (1998). Photobioreactors: Design and performance with respect to
light energy input. Advances in Biochemical Engineering/Biotechnology, 59, 123–152.
Queiroz, M. I., Hornes, M. O., Silva-Manetti, A. G., & Jacob-Lopes, E. (2011). Single-cell oil
production by cyanobacterium Aphanothece microscopica Nägeli cultivated heterotrophically
in fish processing wastewater. Applied Energy, 88, 3438–3443.
Ramírez-Mérida, L. G. R., Zepka, L. Q., & Jacob-Lopes, E. (2017). Current production of
microalgae at industrial scale. In J. C. M. Pires (Ed.), Recent advances in renewable energy
(pp. 242–260). Sharjah: Bentham Science Publishers.
Raslavičius, L., Striūgas, N., & Felneris, M. (2018). New insights into algae factories of the future.
Renewable and Sustainable Energy Reviews, 81, 643–654.
Raso, S., van Genugten, B., Vermuë, M., & Wijffels, R. H. (2012). Effect of oxygen concentration
on the growth of Nannochloropsis sp. at low light intensity. Journal of Applied Phycology, 24,
863–871.
Rawat, I., Kumar, R. R., Mutanda, T., & Bux, F. (2013). Biodiesel from microalgae: A critical
evaluation from laboratory to large scale production. Applied Energy, 103, 444–467.
Richmond, A. (1990). Large scale microalgal culture and applications. In F. E. Round & D.
J. Chapman (Eds.), Progress in phycological research (pp. 269–330). Britol: Biopress Ltd.
Richmond, A., & Cheng-Wu, Z. (2001). Optimization of a flat plate glass reactor for mass
production of Nannochloropsis sp. outdoors. Journal of Biotechnology, 85, 259–269.
Roso, G. R., Santos, A. M., Zepka, L. Q., & Jacob-Lopes, E. (2015). The econometrics of
production of bulk oil and lipid extracted algae in an agroindustrial biorefinery. Current
Biotechnology, 4, 547–553.
San Pedro, A., González-López, C. V., Acién, F. G., & Grima, E. M. (2014). Outdoor pilot-scale
production of Nannochloropsis gaditana: Influence of culture parameters and lipid production
rates in tubular photobioreactors. Bioresource Technology, 169, 667–676.
Santos, A. M., Deprá, M. C., Santos, A. M., Zepka, L. Q., & Jacob-Lopes, E. (2015). Aeration
energy requirements in microalgal heterotrophic bioreactors applied to agroindustrial
wastewater treatment. Current Biotechnology, 4, 249–254.
Scott, S. A., Davey, M. P., Dennis, J. S., Horst, O., Howe, C. J., Lea-Smith, D. J., et al. (2010).
Biodiesel from algae: Challenges and prospects. Current Opinion in Biotechnology, 21,
277–286.
Sierra, E., Acién, F. G., Fernández, J. M., García, J. L., González, C., & Molina, E. (2008).
Characterization of a flat plate photobioreactor for the production of microalgae. Chemical
Engineering Journal, 138, 136–147.
Singh, R. N., & Sharma, S. (2012). Development of suitable photobioreactor for algae production
—a review. Renewable and Sustainable Energy Reviews, 16, 2347–2353.
Su, H., Zhou, X., Xia, X., Sun, Z., & Zhang. Y. (2017a). Progress of microalgae biofuel’s
commercialization. Renewable and Sustainable Energy Reviews, 74, 402–411.
Su, Y., Song, K., Zhang, P., Su, Y., Cheng, J., & Chen, X. (2017b). Progress of microalgae
biofuel’s commercialization. Renewable and Sustainable Energy Reviews, 74, 402–411.
32
M. M. Maroneze and M. I. Queiroz