sustainable and renewable industry for biofuels, feed, and other
products. Microbial Cell Factories, 17(1), 36.
Kumar, R., Ghosh, A. K., & Pal, P. (2020a). Synergy of biofuel
production with waste remediation along with value-added
co-products recovery through microalgae cultivation: A review of
membrane-integrated green approach. Science of the Total Environment, 698, 134169.
Kumar, M., Sun, Y., Rathour, R., Pandey, A., Thakur, I. S., & Tsang,
D. C. W. (2020). Algae as potential feedstock for the production of
biofuels and value-added products: Opportunities and challenges.
Science of The Total Environment, 137116.
Kuo, C. M., Chen, T. Y., Lin, T. H., Kao, C. Y., Lai, J. T., Chang, J. S.,
et al. (2015). Cultivation of Chlorella sp. GD using piggery
wastewater for biomass and lipid production. Bioresource Technology, 194, 326–333.
Leong, W. H., Lim, J.-W., Lam, M. K., Uemura, Y., Ho, C. D., & Ho,
Y. C. (2018). Co-cultivation of activated sludge and microalgae for
the simultaneous enhancements of nitrogen-rich wastewater bioremediation and lipid production. Journal of the Taiwan Institute of
Chemical Engineers, 87, 216–224.
Levine, R. B., Costanza-Robinson, M. S., & Spatafora, G. A. (2011).
Neochlorisoleoabundans grown on anaerobically digested dairy
manure for concomitant nutrient removal and biodiesel feedstock
production. Biomass and Bioenergy, 35, 40–49.
Lim, J. W., Lim, P. E., Seng, C. E., & Adnan, R. (2013). Alternative
solid carbon source from dried attached-growth biomass for
nitrogen removal enhancement in intermittently aerated moving
bed sequencing batch reactor. Environmental Science andPollutionResearch, 21(1), 485–494.
Lobo, I. P., Ferreira, S. L. C., & da Cruz, R. S. (2009). Biodiesel:
Quality parameters and analytical methods. Química Nova, 32(6),
1596–1608.
Lundquist, T. J., Woertz, I. C., Quinn, N. W. T., & Benemann, J. R.
(2010). A realistic technology and engineering assessment of algae
biofuel production. Energy Biosciences Institute, 1.
Maroneze, M. M., & Queiroz, M. I. (2018). Microalgal production
systems with highlights of bioenergy production. In Energy from
Microalgae (pp. 5–34). Springer, Cham.
Maroneze, M. M., Barin, J. S., Menezes, C. R. D., Queiroz, M. I.,
Zepka, L. Q., & Jacob-Lopes, E. (2014). Treatment of
cattle-slaughterhouse wastewater and the reuse of sludge for
biodiesel production by microalgal heterotrophic bioreactors. Scientia Agricola, 71(6), 521–524.
Maroneze, M. M., Deprá, M. C., Zepka, L. Q., & Jacob-Lopes, E.
(2019). Artificial lighting strategies in photobioreactors for bioenergy production by Scenedesmus obliquus CPCC05. SN Applied
Sciences, 1(12), 1695.
Mathimani, T., SenthilKumar, T., Chandrasekar, M., Uma, L., &
Prabaharan, D. (2017). Assessment of fuel properties, engine
performance and emission characteristics of outdoor grown marine
Chlorella vulgaris BDUG 91771 biodiesel. Renewable Energy,
105, 637–646.
McBride, R. C., Lopez, S., Meenach, C., Burnett, M., Lee, P. A.,
Nohilly, F., et al. (2014). Contamination management in low cost
open algae ponds for biofuels production. Industrial Biotechnology,
10(3), 221–227.
Milano, J., Ong, H. C., Masjuki, H. H., Chong, W. T., Lam, M. K.,
Loh, P. K., et al. (2016). Microalgae biofuels as an alternative to
fossil fuel for power generation. Renewable and Sustainable Energy
Reviews, 58, 180–197.
Mohan, S. V., Rohit, M. V., Chiranjeevi, P., Chandra, R., & Navaneeth,
B. (2015). Heterotrophic microalgae cultivation to synergize
biodiesel production with waste remediation: progress and perspectives. Bioresource Technology, 184, 169–178.
MohdUdaiyappan, A. F., Abu Hasan, H., Takriff, M. S., & Sheikh Abdullah,
S. R. (2017). A review of the potentials, challenges and current status of
microalgae biomass applications in industrial wastewater treatment.
Journal of Water Process Engineering, 20, 8–21.
Mondal, M., Halder, G., Oinam, G., Indrama, T., & Tiwari, O. N.
(2019). Bioremediation of organic and inorganic pollutants using
microalgae. In New and Future Developments in Microbial
Biotechnology and Bioengineering (pp. 223–235). Elsevier.
Mu, J., Li, S., Chen, D., Xu, H., Han, F., Feng, B., et al. (2015).
Enhanced biomass and oil production from sugarcane bagasse
hydrolysate (SBH) by heterotrophic oleaginous microalga Chlorella
protothecoides. Bioresource Technology, 185, 99–105.
National ANP. Agency of petroleum, natural gas, and biofuels.
Resolution ANP No. 45. 2014 dated 25.08 https://www.legisweb.
com.br/legislacao/?id=274064. Accessed date: 8 April 2020.
Neofotis, P., Huang, A., Chang, W., Joseph, F., & Polle, J. (2016).
Microalgae strain isolation, screening, and identification for Biofuels and high-value products. Microalgal Production for Biomass
and High-Value Products, 63–89.
Oh, P. P., Lau, H. L. N., Chen, J., Chong, M. F., & Choo, Y. M. (2012).
A review on conventional technologies and emerging process
intensification (PI) methods for biodiesel production. Renewable
and Sustainable Energy Reviews, 16, 5131, 45.
Onukwuli, D. O., Emembolu, L. N., Ude, C. N., Aliozo, S. O., &
Menkiti, M. C. (2017). Optimization of biodiesel production from
refined cotton seed oil and its characterization. Egyptian Journal of
Petroleum, 26(1), 103–110.
Osundeko, O., Ansolia, P., Gupta, S. K., Bag, P., & Bajhaiya, A. K.
(2019). Promises and challenges of growing microalgae in
wastewater. Water Conservation, Recycling and Reuse: Issues and
Challenges, 29–53.
Pandey, A., Srivastava, S., & Kumar, S. (2019). Isolation, screening
and comprehensive characterization of candidate microalgae for
biofuel feedstock production and dairy effluent treatment: A
sustainable approach. Bioresource Technology, 293, 121998.
Paniagua-Michel, J. (2015). bioremediation with microalgae: toward
sustainable production of Biofuels. In Handbook of Marine
Microalgae (pp. 471–481). Academic Press.
Park, J. B. K., Craggs, R. J., & Shilton, A. N. (2011). Wastewater
treatment high rate algal ponds for biofuel production. Bioresource
Technology, 102(1), 35–42.
Patidar, S. K., & Mishra, S. (2017). Carbon sequestration by
microalgae: A green approach for climate change mitigation.
Encyclopedia of Sustainable Technologies, 477–483.
Perez-Garcia, O., Escalante, F. M., de-Bashan, L. E., & Bashan, Y.
(2011). Heterotrophic cultures of microalgae: Metabolism and
potential products. Water Research, 45(1), 11–36.
Pittman, J. K., Dean, A. P., & Osundeko, O. (2011). The potential of
sustainable algal biofuel production using wastewater resources.
Bioresource Technology, 102(1), 17–25.
Queiroz, M. I., Hornes, M. O., da Silva-Manetti, A. G., & Jacob-Lopes,
E. (2011). Single-cell oil production by cyanobacterium AphanothecemicroscopicaNägeli cultivated heterotrophically in fish processing wastewater. Applied Energy, 88(10), 3438–3443.
Queiroz, M. I., Hornes, M. O., da Silva Manetti, A. G., Zepka, L. Q., &
Jacob-Lopes, E. (2013). Fish processing wastewater as a platform of
the microalgalbiorefineries. Biosystems Engineering, 115(2), 195–
202.
Queiroz, M. I., Maroneze, M. M., Manetti, A. G. D. S., Vieira, J. G.,
Zepka, L. Q., & Jacob-Lopes, E. (2018). Enhanced single-cell oil
production by cold shock in cyanobacterial cultures. Ciência Rural,
48(11).
Rajaeifar, M. A., Akram, A., Ghobadian, B., Rafiee, S., Heijungs, R., &
Tabatabaei, M. (2016). Environmental impact assessment of olive
Bioconversion of Industrial Wastes into Biodiesel Feedstocks
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