References

  1. M.A.Q.M Abdul Hakim, A potential application of microalgae in produced water treatment, master thesis, QSpace institutional repository, Qatar University, Qatar, 2016.
  2. M. Nasir, I. Jafari, B. Parniankhoy, Oil and gas produced water management: a review of treatment technologies, challenges, and opportunities, Chem. Eng. Commun., 204(8) (2017) 990–1005.
  3. K. Azetsu-Scott, P. Yeats, G. Wohlgeschaffen, J. Dalziel, S. Niven, K. Lee, Precipitation of heavy metals in produced water: Influence on contaminant transport and toxicity, Mar. Environ. Res., 63(2) (2007) 146–167.
  4. U. Rehman, J.I. Han, Enhanced growth rate and lipid production of freshwater microalgae by adopting two-stage cultivation system under diverse light and nutrients conditions, Water Environ. J., 29(4) (2015) 533–540.
  5. J.C. Campos, R.M.H. Borges, A.M.D. Oliveira Filho, R. Nobrega, G.L. Sant’Anna, Oilfield wastewater treatment by combined microfiltration and biological processes, Water Res., 36(1) (2002) 95–104.
  6. C.M. Kao, C.C. Wang, Control of BTEX migration by intrinsic bioremediation at a gasoline spill site, Water Res., 34(13) (2000) 3413–3423.
  7. J.D. Arthur, B.G. Langhus, C. Patel, Technical summary of oil and gas produced water treatment technologies. All Consulting, LLC, Tulsa, OK. 2005.
  8. A. Fakhru’l-Razi, A. Pendashteh, L.C. Abdullah, D.R.A. Biak, S.S. Madaeni, Z.Z. Abidin, Review of technologies for oil and gas produced water treatment, J. Hazard. Mater., 170(2) (2009) 530–551.
  9. S.R. Subashch and drabose, B. Ramakrishnan, M. Megharaj, K. Venkateswarlu, R. Naidu, Consortia of cyanobacteria/microalgae and bacteria: biotechnological potential, Biotechnol. Adv., 29(6) (2011) 896–907.
  10. A.D.Z. Albdiri, A. Ojha, M. Al-Dahhan, Study of local gas holdup and specific interfacial area in a split-column airlift bioreactor using sophisticated 4-point optical probe for culturing microlgae/cyanobacteria, Chem. Eng. Commun., 202(7) (2015) 892–898.
  11. P. Das, M.I. Thaher, M.A.Q.M.A. Hakim, H.M.S. Al-Jabri, Sustainable production of toxin free marine microalgae biomass as fish feed in large scale open system in the Qatari desert, Bioresour. Technol., 192 (2015) 97–104.
  12. P.G. Silva, H.J. Silva, Effect of mineral nutrients on cell growth and self-flocculation of Tolypothrix tenuis for the production of a biofertilizer, Bioresour. Technol., 98(3) (2007) 607–611.
  13. A.M. Illman, A.H. Scragg, S.W. Shales, Increase in Chlorella strains calorific values when grown in low nitrogen medium, Enzyme Microb. Technol., 27(8) (2000) 631–635.
  14. L.B.B. Mendes, P.C.R. Cunha, M.G.M. D’oca, P.C. Abreu, E.G. Primel, U.S. Patent No. 7,955,505. Washington, DC: U.S. Patent and Trademark Office. (2010).
  15. A. Takáčová, M. Smolinská, M. Semerád, P. Matúš, Degredation of BTEX by Microalgae Parachlorella kessleri, Pet. Coal, 57(2) (2015) 101.
  16. J.F. Paixão, I.A. Nascimento, S.A. Pereira, M.B.L. Leite, G.C. Carvalho, J.S.C. Silveira, I.L.P. Rodrigues, Estimating the gasoline components and formulations toxicity to microalgae (Tetraselmis chuii) and oyster (Crassostrea rhizophorae) embryos: an approach to minimize environmental pollution risk, Environ. Res., 103(3) (2007) 365–374.
  17. Y. Chisti, Biodiesel from microalgae, Biotechnol Adv., 25(3) (2007) 294–306.
  18. A. Demirbas, M.F. Demirbas, Importance of algae oil as a source of biodiesel, Energy Convers. Manage., 52(1) (2011) 163–170.
  19. R. Singh, S.M. Celin, Biodegradation of BTEX (benzene, toluene, ethyl benzene and xylene) compounds by bacterial strain under aerobic conditions, J. Ecobiotechnol., 2(4) (2010).
  20. B. Fernandes, J. Teixeira, G. Dragone, A.A. Vicente, S. Kawano, K. Bišová, M. Vítová, Relationship between starch and lipid accumulation induced by nutrient depletion and replenishment in the microalga Parachlorella kessleri, Bioresour. Technol, 144 (2013) 268–274.
  21. R. Slade, A. Bauen, Micro-algae cultivation for biofuels: cost, energy balance, environmental impacts, and future prospects, Biomass Bioenergy, 53 (2013) 29–38.
  22. Z. Pavlic, B. Stjepanovic, J. Horvatic, V. Persic, D. Puntaric, J. Culig, Comparative sensitivity of green algae to herbicides using Erlenmeyer flask and microplate growth-inhibition assays, Bull Environ. Contam. Toxicol., 76(5) (2006) 883–890.
  23. D. St. Laurent, C. Blaise, P. MacQuarrie, R. Scroggins, B. Trottier, Comparative assessment of herbicide phytotoxicity to Selenastrum capricornutum using microplate and flask bioassay procedures, Environ. Toxicol. Water Qual., 7(1) (1992) 35–48.
  24. A.H.A. Al-Shatri, E. Ali, N.K.N. Al-Shorgani, M.S. Kalil, Growth of Scenedesmus dimorphus in different algal media and pH profile due to secreted metabolites, Afr. J. Biotechnol., 13(16) (2015).
  25. D.A. White, A. Pagarette, P. Rooks, S.T. Ali, The effect of sodium bicarbonate supplementation on growth and biochemical composition of marine microalgae cultures, J. Appl. Phycol., 25(1) (2013) 153–165.
  26. L. Huan, H.X. Su, C.X. Duan, S. Gao, X.J. Xie, G.C. Wang, Ulva prolifera (Chlorophyta): a suitable material to remove Cd2+ from aquatic environments, Water Environ. J., (2017).
  27. J. Shi, B. Podola, M. Melkonian, Removal of nitrogen and phosphorus from wastewater using microalgae immobilized on twin layers: an experimental study, J. Appl. Phycol., 19(5) (2007) 417–423.
  28. A.A. Arriada, P.C. Abreu, Nannochloropsis oculata Growth in produced water: an alternative for massive microalgae biomass production, Braz. J. Pet. Gas , 8(3) (2014).
  29. Y.K. Lee, Microalgae Cultivation Fundamentals, In Algae Biotechnology, Springer International Publishing, 2016, pp. 1–19.
  30. L. Xin, H. Hong-ying, G. Ke, S. Ying-xue, Effects of different nitrogen and phosphorus concentrations on the growth, nutrient uptake, and lipid accumulation of a freshwater microalga Scenedesmus sp., Bioresour. Technol., 101(14) (2010) 5494–5500.
  31. J. Yang, X. Li, H. Hu, X. Zhang, Y. Yu, Y. Chen, Growth and lipid accumulation properties of a freshwater microalga, Chlorella ellipsoidea YJ1, in domestic secondary effluents, Appl. Energy, 88(10) (2011) 3295–3299.
  32. B. Wang, C.Q. Lan, Biomass production and nitrogen and phosphorus removal by the green alga Neochloris oleoabundans in simulated wastewater and secondary municipal wastewater effluent, Bioresour. Technol., 102(10) (2011) 5639–5644.
  33. C.G. Lee, Nitrogen removal from wastewaters by microalgae without consuming organic carbon sources, J. Microbiol. Biotechnol., 12(6) (2002) 979–985.
  34. M. Pivokonsky, O. Kloucek, L. Pivokonska, Evaluation of the production, composition and aluminum and iron complexation of algogenic organic matter, Water Res., 40(16) (2006) 3045–3052.
  35. M.H. El-Naas, J.A. Acio, A.E. El Telib, Aerobic biodegradation of BTEX: Progresses and prospects, J. Environ. Chem. Eng., 2(2) (2014) 1104–1122.
  36. Y. You, J. Shim, C.H. Cho, M.H. Ryu, P.J. Shea, S. Kamala Kannan, J.C. Chae, B.T. Oh, Biodegradation of BTEX mixture by Pseudomonas putida YNS1 isolated from oil contaminated soil, J. Basic Microbiol., 53(5) (2013) 469–475.
  37. H.R. An, H.J. Park, E.S. Kim, Cloning and expression of thermophilic catechol 1, 2–dioxygenase gene (catA) from Streptomyces setonii, FEMS Microbiol. Lett., 195(1) (2001) 17–22.
  38. V. Andreoni, L. Gianfreda, Bioremediation and monitoring of aromatic-polluted habitats, Appl. Microbiol. Biotechnol., 76(2) (2007) 287–308.
  39. L. Zhang, C. Zhang, Z. Cheng, Y. Yao, J. Chen, Biodegradation of benzene, toluene, ethylbenzene, and o-xylene by the bacterium Mycobacterium cosmeticum byf-4, Chemosphere, 90(4) (2013) 1340–1347.
  40. B. Hendrickx, H. Junca, J. Vosahlova, A. Lindner, I. Rüegg, M. Bucheli-Witschel, M. Brennerova, Alternative primer sets for PCR detection of genotypes involved in bacterial aerobic BTEX degradation: distribution of the genes in BTEX degrading isolates and in subsurface soils of a BTEX contaminated industrial site, J. Microbiol. Method, 64(2) (2006) 250–265.
  41. R.Y. Stanier, R. Kunisawa, M. Mandel, G. Cohen-Bazire, Purification and properties of unicellular blue-green algae (order Chroococcales), Bacteriol. Rev., 35(2) (1971) 171.
  42. T. Cai, S.Y. Park, Y. Li, Nutrient recovery from wastewater streams by microalgae: status and prospects, Renew Sust. Energ. Rev. 19 (2013) 360–369.
  43. M. Pereira, M.C. Bartolomé, S. Sánchez-Fortún, Influence of pH on the survival of Dictyosphaerium chlorelloides populations living in aquatic environments highly contaminated with chromium, Ecotoxicol. Environ. Saf., 98 (2013) 82–87.
  44. K. Miazek, W. Iwanek, C. Remacle, A. Richel, D. Goffin, Effect of metals, metalloids and metallic nanoparticles on microalgae growth and industrial product biosynthesis: a review, Int. J. Mol. Sci., 16(10) (2015) 23929–23969.
  45. C.M. Monteiro, P.M. Castro, F.X. Malcata, Metal uptake by microalgae: Underlying mechanisms and practical applications, Biotechnol. Progr., 28(2) (2012) 299–311.
  46. K. Napan, D. Hess, B. McNeil, J.C. Quinn, Quantification of heavy metals and other inorganic contaminants on the productivity of microalgae. J. Vis. Exp., 101 (2015) 52936–52936.
  47. J.F. Talling, Potassium-a non-limiting nutrient in fresh waters?, Freshw. Rev., 3(2) (2010) 97–104.
  48. R.A. Andersen, Algal Culturing Techniques, Academic Press, 2005.
  49. W.G. Sunda, Feedback interactions between trace metal nutrients and phytoplankton in the ocean, Front. Microbiol, 3(204) (2012) 10–3389.
  50. L. Millach, A. Solé, I. Esteve, Role of Geitlerinema sp. DE2011 and Scenedesmus sp. DE2009 as bioindicators and immobilizers of chromium in a contaminated natural environment, BioMed Res. Internat., 2015 (2015).
  51. Z. Hörcsik, V. Oláh, A. Balogh, I. Mészáros, L. Simon, G. Lakatos, Effect of chromium (VI) on growth, element and photosynthetic pigment composition of Chlorella pyrenoidosa, Acta Biol. Szeged, 50 (2006) 19–23.
  52. A. D’ors, M. Pereira, M. C. Bartolomé, V. López-Rodas, E. Costas, S. Sánchez-Fortún, Toxic effects and specific chromium acquired resistance in selected strains of Dyctiosphaerium chlorelloides, Chemosphere, 81(2) (2010) 282–287.