Bharadwaj, S. V. V., Ram, S., Pancha, I., & Mishra, S. (2020). Recent
trends in strain improvement for production of Biofuels from
microalgae. Microalgae Cultivation for Biofuels Production, 211–225.
Bich, N. N., Yaziz, M. I., & Bakti, N. A. K. (1999). Combination of
Chlorella vulgaris and Eichhorniacrassipes for wastewater nitrogen
removal. Water Research, 33(10), 2357–2362.
Borowitzka, M. A. (2013). High-value products from microalgae—
their development and commercialisation. Journal of Applied
Phycology, 25(3), 743–756.
Borowitzka, M. (2018). Commercial-scale production of microalgae for
bioproducts. Blue Biotechnology: Production and Use of Marine
Molecules, 1, 33–65.
Cavalheiro, L. F., Misutsu, M. Y., Rial, R. C., Viana, L. H., & Oliveira,
L. C. S. (2020). Characterization of residues and evaluation of the
physico chemical properties of soybean biodiesel and biodiesel:
Diesel blends in different storage conditions. Renewable Energy,
151, 454–462.
Cecconet, D., Molognoni, D., Callegari, A., & Capodaglio, A. G.
(2017). Biological combination processes for efficient removal of
pharmaceutically active compounds from wastewater: A review and
future perspectives. Journal of Environmental Chemical Engineering, 5(4), 3590–3603.
Cheirsilp, B., Thawechai, T., & Prasertsan, P. (2017). Immobilized
oleaginous microalgae for production of lipid and phytoremediation
of secondary effluent from palm oil mill in fluidized bed
photobioreactor. Bioresource Technology, 241, 787–794.
Chen, J., Li, J., Dong, W., Zhang, X., Tyagi, R. D., Drogui, P., et al.
(2018). The potential of microalgae in biodiesel production.
Renewable and Sustainable Energy Reviews, 90, 336–346.
Cheng, D. L., Ngo, H. H., Guo, W. S., Chang, S. W., Nguyen, D. D., &
Kumar, S. M. (2018a). Microalgae biomass from swine wastewater
and its conversion to bioenergy. Bioresource Technology, 275,
109–122.
Cheng, D. L., Ngo, H. H., Guo, W. S., Chang, S. W., Nguyen, D. D.,
Kumar, S. M.,… & Wei, D. (2018). Problematic effects of
antibiotics on anaerobic treatment of swine wastewater. Bioresource
Technology, 263, 642–653.
Chernova, N. I., & Kiseleva, S. V. (2017). Microalgae biofuels:
Induction of lipid synthesis for biodiesel production and biomass
residues into hydrogen conversion. International Journal of
Hydrogen Energy, 42(5), 2861–2867.
Chinnasamy, S., Bhatnagar, A., Hunt, R. W., & Das, K. C. (2010).
Microalgae cultivation in a wastewater dominated by carpet mill
effluents for biofuel applications. Bioresource Technology, 101(9),
3097–3105.
Chisti, Y. (2007). Biodiesel from microalgae. Biotechnology Advances,
25(3), 294–306.
Chiu, S. Y., Kao, C. Y., Chen, T. Y., Chang, Y. B., Kuo, C. M., & Lin,
C. S. (2015). Cultivation of microalgalChlorella for biomass and
lipid production using wastewater as nutrient resource. Bioresource
Technology, 184, 179–189.
Cho, H. U., & Park, J. M. (2018). Biodiesel production by various
oleaginous microorganisms from organic wastes. Bioresource
Technology, 256, 502–508.
Cho, H. U., Kim, Y. M., Choi, Y., Xu, X., Shin, D. Y., & Park, J. M.
(2015). Effects of pH control and concentration on microbial oil
production from Chlorella vulgaris cultivated in the effluent of a
low-cost organic waste fermentation system producing volatile fatty
acids. Bioresource Technology, 184, 245–250.
Cho, H. U., Kim, Y. M., & Park, J. M. (2017). Enhanced microalgal
biomass and lipid production from a consortium of indigenous
microalgae and bacteria present in municipal wastewater under
gradually mixotrophic culture conditions. Bioresource Technology,
228, 290–297.
Clijsters, H., & Van Assche, F. (1985). Inhibition of photosynthesis by
heavy metals. Photosynthesis Research, 7(1), 31–40.
Cuevas-Castillo, G. A., Navarro-Pineda, F. S., Rodríguez, S. A. B., &
Rivero, J. C. S. (2020). Advances on the processing of microalgal
biomass for energy-driven biorefineries. Renewable and Sustainable
Energy Reviews, 125, 109606.
Delrue, F., Setier, P. A., Sahut, C., Cournac, L., Roubaud, A., Peltier,
G., et al. (2012). An economic, sustainability, and energetic model
of biodiesel production from microalgae. Bioresource Technology,
111, 191–200.
Deprá, M. C., dos Santos, A. M., Severo, I. A., Santos, A. B., Zepka, L.
Q., & Jacob-Lopes, E. (2018). Microalgalbiorefineries for bioenergy
production: can we move from concept to industrial reality?.
BioEnergy Research, 11(4), 727–747.
Dias, R. R., Vieira, K. R., Pinheiro, P. N., Zepka, L. Q., &
Jacob-Lopes, E. (2019). Biodiesel from microalgae. In A Closer
Look at Biodiesel Production, 1–319.
El Shimi, H. I., & Moustafa, S. S. (2018). Biodiesel production from
microalgae grown on domestic wastewater: Feasibility and Egyptian
case study. Renewable and Sustainable Energy Reviews, 82, 4238–
4244.
European Standard (EN). (2003). UNE-EN 14214—automotive fuels—
fatty acid methyl esters (FAME) for diesel engine—requirements
and test methods. Pilsen, Czech Republic: European Standard.
Fazal, T., Mushtaq, A., Rehman, F., Ullah Khan, A., Rashid, N.,
Farooq, W.,… & Xu, J. (2018). Bioremediation of textile wastewater and successive biodiesel production using microalgae. Renewable and Sustainable Energy Reviews, 82, 3107–3126.
Feng, X., Walker, T. H., Bridges, W. C., Thornton, C., & Gopalakrishnan, K. (2014). Biomass and lipid production of Chlorella
protothecoides under heterotrophic cultivation on a mixed waste
substrate of brewer fermentation and crude glycerol. Bioresource
Technology, 166, 17–23.
Francisco, É. C., Franco, T. T., Wagner, R., & Jacob-Lopes, E. (2014).
Assessment of different carbohydrates as exogenous carbon source
in cultivation of cyanobacteria. Bioprocess and Biosystems Engineering, 37(8), 1497–1505.
Francisco, É. C., Franco, T. T., Zepka, L. Q., & Jacob-Lopes, E.
(2015). From waste-to-energy: the process integration and intensification for bulk oil and biodiesel production by microalgae.
Journal of Environmental Chemical Engineering, 3(1), 482–487.
Griffiths, M. J., & Harrison, S. T. (2009). Lipid productivity as a key
characteristic for choosing algal species for biodiesel production.
Journal of Applied Phycology, 21(5), 493–507.
IEA. International Energy Agency. Oil market report. (2020). https://
www.iea.org/reports/oil-market-report-may-2020. Accessed 17
May 2020.
Ingrao, C., Bacenetti, J., Bezama, A., Blok, V., Goglio, P., Koukios, E.
G.,… & Huisingh, D. (2018). The potential roles of bio-economy in
the transition to equitable, sustainable, post fossil-carbon societies:
Findings from this virtual special issue. Journal of Cleaner
Production, 204, 471–488.
Jacob-Lopes, E., & Franco, T. T. (2013). From oil refinery to
microalgalbiorefinery. Journal of CO 2 utilization, 2, 1–7.
Jacob-Lopes, E., Maroneze, M. M., Deprá, M. C., Sartori, R. B., Dias,
R. R., & Zepka, L. Q. (2019). Bioactive food compounds from
microalgae: An innovative framework on industrial biorefineries.
Current Opinion in Food Science, 25, 1–7.
Jayakumar, S., Yusoff, M. M., Rahim, M. H. A., Maniam, G. P., &
Govindan, N. (2017). The prospect of microalgal biodiesel using
agro-industrial and industrial wastes in Malaysia. Renewable and
Sustainable Energy Reviews, 72, 33–47.
Khan, M. I., Shin, J. H., & Kim, J. D. (2018). The promising future of
microalgae: current status, challenges, and optimization of a
118
R. R. Dias et al.
trends in strain improvement for production of Biofuels from
microalgae. Microalgae Cultivation for Biofuels Production, 211–225.
Bich, N. N., Yaziz, M. I., & Bakti, N. A. K. (1999). Combination of
Chlorella vulgaris and Eichhorniacrassipes for wastewater nitrogen
removal. Water Research, 33(10), 2357–2362.
Borowitzka, M. A. (2013). High-value products from microalgae—
their development and commercialisation. Journal of Applied
Phycology, 25(3), 743–756.
Borowitzka, M. (2018). Commercial-scale production of microalgae for
bioproducts. Blue Biotechnology: Production and Use of Marine
Molecules, 1, 33–65.
Cavalheiro, L. F., Misutsu, M. Y., Rial, R. C., Viana, L. H., & Oliveira,
L. C. S. (2020). Characterization of residues and evaluation of the
physico chemical properties of soybean biodiesel and biodiesel:
Diesel blends in different storage conditions. Renewable Energy,
151, 454–462.
Cecconet, D., Molognoni, D., Callegari, A., & Capodaglio, A. G.
(2017). Biological combination processes for efficient removal of
pharmaceutically active compounds from wastewater: A review and
future perspectives. Journal of Environmental Chemical Engineering, 5(4), 3590–3603.
Cheirsilp, B., Thawechai, T., & Prasertsan, P. (2017). Immobilized
oleaginous microalgae for production of lipid and phytoremediation
of secondary effluent from palm oil mill in fluidized bed
photobioreactor. Bioresource Technology, 241, 787–794.
Chen, J., Li, J., Dong, W., Zhang, X., Tyagi, R. D., Drogui, P., et al.
(2018). The potential of microalgae in biodiesel production.
Renewable and Sustainable Energy Reviews, 90, 336–346.
Cheng, D. L., Ngo, H. H., Guo, W. S., Chang, S. W., Nguyen, D. D., &
Kumar, S. M. (2018a). Microalgae biomass from swine wastewater
and its conversion to bioenergy. Bioresource Technology, 275,
109–122.
Cheng, D. L., Ngo, H. H., Guo, W. S., Chang, S. W., Nguyen, D. D.,
Kumar, S. M.,… & Wei, D. (2018). Problematic effects of
antibiotics on anaerobic treatment of swine wastewater. Bioresource
Technology, 263, 642–653.
Chernova, N. I., & Kiseleva, S. V. (2017). Microalgae biofuels:
Induction of lipid synthesis for biodiesel production and biomass
residues into hydrogen conversion. International Journal of
Hydrogen Energy, 42(5), 2861–2867.
Chinnasamy, S., Bhatnagar, A., Hunt, R. W., & Das, K. C. (2010).
Microalgae cultivation in a wastewater dominated by carpet mill
effluents for biofuel applications. Bioresource Technology, 101(9),
3097–3105.
Chisti, Y. (2007). Biodiesel from microalgae. Biotechnology Advances,
25(3), 294–306.
Chiu, S. Y., Kao, C. Y., Chen, T. Y., Chang, Y. B., Kuo, C. M., & Lin,
C. S. (2015). Cultivation of microalgalChlorella for biomass and
lipid production using wastewater as nutrient resource. Bioresource
Technology, 184, 179–189.
Cho, H. U., & Park, J. M. (2018). Biodiesel production by various
oleaginous microorganisms from organic wastes. Bioresource
Technology, 256, 502–508.
Cho, H. U., Kim, Y. M., Choi, Y., Xu, X., Shin, D. Y., & Park, J. M.
(2015). Effects of pH control and concentration on microbial oil
production from Chlorella vulgaris cultivated in the effluent of a
low-cost organic waste fermentation system producing volatile fatty
acids. Bioresource Technology, 184, 245–250.
Cho, H. U., Kim, Y. M., & Park, J. M. (2017). Enhanced microalgal
biomass and lipid production from a consortium of indigenous
microalgae and bacteria present in municipal wastewater under
gradually mixotrophic culture conditions. Bioresource Technology,
228, 290–297.
Clijsters, H., & Van Assche, F. (1985). Inhibition of photosynthesis by
heavy metals. Photosynthesis Research, 7(1), 31–40.
Cuevas-Castillo, G. A., Navarro-Pineda, F. S., Rodríguez, S. A. B., &
Rivero, J. C. S. (2020). Advances on the processing of microalgal
biomass for energy-driven biorefineries. Renewable and Sustainable
Energy Reviews, 125, 109606.
Delrue, F., Setier, P. A., Sahut, C., Cournac, L., Roubaud, A., Peltier,
G., et al. (2012). An economic, sustainability, and energetic model
of biodiesel production from microalgae. Bioresource Technology,
111, 191–200.
Deprá, M. C., dos Santos, A. M., Severo, I. A., Santos, A. B., Zepka, L.
Q., & Jacob-Lopes, E. (2018). Microalgalbiorefineries for bioenergy
production: can we move from concept to industrial reality?.
BioEnergy Research, 11(4), 727–747.
Dias, R. R., Vieira, K. R., Pinheiro, P. N., Zepka, L. Q., &
Jacob-Lopes, E. (2019). Biodiesel from microalgae. In A Closer
Look at Biodiesel Production, 1–319.
El Shimi, H. I., & Moustafa, S. S. (2018). Biodiesel production from
microalgae grown on domestic wastewater: Feasibility and Egyptian
case study. Renewable and Sustainable Energy Reviews, 82, 4238–
4244.
European Standard (EN). (2003). UNE-EN 14214—automotive fuels—
fatty acid methyl esters (FAME) for diesel engine—requirements
and test methods. Pilsen, Czech Republic: European Standard.
Fazal, T., Mushtaq, A., Rehman, F., Ullah Khan, A., Rashid, N.,
Farooq, W.,… & Xu, J. (2018). Bioremediation of textile wastewater and successive biodiesel production using microalgae. Renewable and Sustainable Energy Reviews, 82, 3107–3126.
Feng, X., Walker, T. H., Bridges, W. C., Thornton, C., & Gopalakrishnan, K. (2014). Biomass and lipid production of Chlorella
protothecoides under heterotrophic cultivation on a mixed waste
substrate of brewer fermentation and crude glycerol. Bioresource
Technology, 166, 17–23.
Francisco, É. C., Franco, T. T., Wagner, R., & Jacob-Lopes, E. (2014).
Assessment of different carbohydrates as exogenous carbon source
in cultivation of cyanobacteria. Bioprocess and Biosystems Engineering, 37(8), 1497–1505.
Francisco, É. C., Franco, T. T., Zepka, L. Q., & Jacob-Lopes, E.
(2015). From waste-to-energy: the process integration and intensification for bulk oil and biodiesel production by microalgae.
Journal of Environmental Chemical Engineering, 3(1), 482–487.
Griffiths, M. J., & Harrison, S. T. (2009). Lipid productivity as a key
characteristic for choosing algal species for biodiesel production.
Journal of Applied Phycology, 21(5), 493–507.
IEA. International Energy Agency. Oil market report. (2020). https://
www.iea.org/reports/oil-market-report-may-2020. Accessed 17
May 2020.
Ingrao, C., Bacenetti, J., Bezama, A., Blok, V., Goglio, P., Koukios, E.
G.,… & Huisingh, D. (2018). The potential roles of bio-economy in
the transition to equitable, sustainable, post fossil-carbon societies:
Findings from this virtual special issue. Journal of Cleaner
Production, 204, 471–488.
Jacob-Lopes, E., & Franco, T. T. (2013). From oil refinery to
microalgalbiorefinery. Journal of CO 2 utilization, 2, 1–7.
Jacob-Lopes, E., Maroneze, M. M., Deprá, M. C., Sartori, R. B., Dias,
R. R., & Zepka, L. Q. (2019). Bioactive food compounds from
microalgae: An innovative framework on industrial biorefineries.
Current Opinion in Food Science, 25, 1–7.
Jayakumar, S., Yusoff, M. M., Rahim, M. H. A., Maniam, G. P., &
Govindan, N. (2017). The prospect of microalgal biodiesel using
agro-industrial and industrial wastes in Malaysia. Renewable and
Sustainable Energy Reviews, 72, 33–47.
Khan, M. I., Shin, J. H., & Kim, J. D. (2018). The promising future of
microalgae: current status, challenges, and optimization of a
118
R. R. Dias et al.
