References

  1. S.J. Bennett, E.G. Barrettlennard, T.D. Colmer, Salinity and waterlogging as constraints to saltland pasture production: a review, Agric. Ecosyst. Environ., 129 (2009) 349–360.
  2. Y. Wang, Y. Li, Land exploitation resulting in soil salinization in a desert-oasis ecotone, Catena, 100 (2013) 50–56.
  3. S.J. Wang, Q. Chen, Y. Li, Y.Q. Zhuo, L.Z. Xu, Research on salinealkali soil amelioration with FGD gypsum, Resour. Conserv. Recycl., 121 (2017) 82–92.
  4. P. Rengasamy, World salinization with emphasis on Australia, J. Exp. Bot., 57 (2006) 1017–1023.
  5. R.L. Dehaan, G.R. Taylor, Field-derived spectra of salinized soils and vegetation as indicators of irrigation-induced soil salinization, Remote Sens. Environ., 80 (2002) 406–417.
  6. E.G. Jobbagy, R.B. Jackson, Groundwater use and salinization with grassland afforestation, Global Change Biol., 10 (2010) 1299–1312.
  7. R. Wang, S. Wan, J. Sun, H. Xiao, Soil salinity, sodicity and cotton yield parameters under different drip irrigation regimes during saline wasteland reclamation, Agric. Water Manage., 209 (2018) 20–31.
  8. Y.P. Wu, Y.F. Li, C.Y. Zheng, C. Zheng, Y.F. Zhang, Z.J. Sun, Organic amendment application influence soil organism abundance in saline alkali soil, Eur. J. Soil Biol., 54 (2013) 32–40.
  9. F. López-Valdez, F. Fernández-Luqueño, M.L. Luna-Guido, R. Marsch, V. Olalde-Portugal, L. Dendooven, Microorganisms in sewage sludge added to an extreme alkaline saline soil affect carbon and nitrogen dynamics, Appl. Soil Ecol., 45 (2010) 225–231.
  10. L. Wang, J. Chen, Z. Liang, F. Chen, L. Wang, H. Zhao, D. Xue, Effects of jute straw and organic fertilizer on the biological properties of the coastal saline soil, J. Nanjing For. Univ. (Natural Sciences Edition), 34 (2010) 39–42 (in Chinese).
  11. Y. Zhao, S. Wang, Y. Li, J. Liu, Y. Zhuo, W. Zhang, J. Wang, L. Xu, Long-term performance of flue gas desulfurization gypsum in a large-scale application in a saline-alkali wasteland in northwest China, Agric. Ecosyst. Environ., 261 (2018) 115–124.
  12. Y. Zhao, S. Wang, Y. Li, J. Liu, Y. Zhuo, H. Chen, J. Wang, L. Xu, Z. Sun, Extensive reclamation of saline-sodic soils with flue gas desulfurization gypsum on the Songnen Plain, Northeast China, Geoderma, 321 (2018) 52–60.
  13. F. Alam, A. Date, R. Rasjidin, S. Mobin, H. Moria, A. Baqui, Biofuel from algae-Is it a viable alternative? Procedia Eng., 49 (2012) 221–227.
  14. Y. Chisti, Biodiesel from microalgae, Biotechnol. Adv., 25 (2007) 294–306.
  15. A.S. Mirón, M.C.C. Garcı́a, A.C. Gómez, F.G.A. Camacho, E.M. Grima, Y. Chisti, Shear stress tolerance and biochemical characterization of Phaeodactylum tricornutum in quasi steadystate continuous culture in outdoor photobioreactors, Biochem. Eng. J., 16 (2003) 287–297.
  16. N. Mallick, Biotechnological potential of immobilized algae for wastewater N, P and metal removal: a review, Biometals, 15 (2002) 377–390.
  17. L.E. Debashan, Y. Bashan, Immobilized microalgae for removing pollutants: review of practical aspects, Bioresour. Technol., 101 (2010) 1611–1627.
  18. J.P. Hoffmann, Wastewater treatment with suspended and nonsuspended algae, J. Phycol., 34 (2010) 757–763.
  19. P.L. Gupta, H.J. Choi, R.R. Pawar, S.P. Jung, S.M. Lee, Enhanced biomass production through optimization of carbon source and utilization of wastewater as a nutrient source, J. Environ. Manage., 184 (2016) 585–595.
  20. H. Ren, J. Tuo, M.M. Addy, R. Zhang, Q. Lu, E. Anderson, P. Chen, R. Ruan, Cultivation of Chlorella vulgaris in a pilot-scale photobioreactor using real centrate wastewater with waste glycerol for improving microalgae biomass production and wastewater nutrients removal, Bioresour. Technol., 245 (2017) 1130–1138.
  21. V.H. Smith, B.S. Sturm, F.J. Denoyelles, S.A. Billings, The ecology of algal biodiesel production, Trends Ecol. Evol., 25 (2010) 301–309.
  22. X.M. Sun, L.J. Ren, Z.Q. Bi, X.J. Ji, Q.Y. Zhao, H. Huang, Adaptive evolution of microalgae Schizochytrium sp. under high salinity stress to alleviate oxidative damage and improve lipid biosynthesis, Bioresour. Technol., 267 (2018) 438–444.
  23. K. Chokshi, I. Pancha, A. Ghosh, S. Mishra, Salinity induced oxidative stress alters the physiological responses and improves the biofuel potential of green microalgae Acutodesmus dimorphus, Bioresour. Technol., 244 (2017) 1376–1383.
  24. E.G. Bligh, W.J. Dyer, A rapid method of total lipid extraction and purification, Can. J. Biochem. Physiol., 37 (1959) 911–917.
  25. X. Li, H.Y. Hu, J. Yang, Y.H. Wu, Enhancement effect of ethyl- 2-methyl acetoacetate on triacylglycerols production by a freshwater microalga, Scenedesmus sp. LX1. Bioresour. Technol., 101 (2010) 9819–9821.
  26. State Environmental Protection Administration, Monitoring Method of Water and Wastewater, 4th ed., Vol. 105, China Environmental Science Press, Beijing, 2002, pp. 246–248.
  27. A.R. Rao, C. Dayananda, R. Sarada, T.R. Shamala, G.A. Ravishankar, Effect of salinity on growth of green alga Botryococcus braunii and its constituents, Bioresour. Technol., 98 (2007) 560–564.
  28. G. Srivastava, Nishchal, V.V. Goud, Salinity induced lipid production in microalgae and cluster analysis (ICCB 16-BR_047), Bioresour. Technol., 242 (2017) 244–252.
  29. A. Karimov, M. Qadir, A. Noble, F. Vyshpolsky, K. Anzelm, Development of magnesium-dominant soils under irrigated agriculture in southern Kazakhstan, Pedosphere, 19 (2009) 331–343.
  30. K. Sand-Jensen, M.F. Pedersen, S.L. Nielsen, Photosynthetic use of inorganic carbon among primary and secondary water plants in streams, Freshwater Biol., 27 (2010) 283–293.
  31. L. Cao, T. Zhou, Z. Li, J. Wang, J. Tang, R. Ruan, Y. Liu, Effect of combining adsorption-stripping treatment with acidification on the growth of Chlorella vulgaris and nutrient removal from swine wastewater, Bioresour. Technol., 263 (2018) 10–16.
  32. W. Zhou, P. Chen, M. Min, X. Ma, J. Wang, R. Griffith, F. Hussain, P. Peng, Q. Xie, Y. Li, Environment-enhancing algal biofuel production using wastewaters, Renewable Sustainable Energy Rev., 36 (2014) 256–269.
  33. R.H. Wijffels, M.J. Barbosa. An outlook on microalgal biofuels. Science, 329 (2010) 796–799.
  34. J.J. Zhan, Q. Zhang, M.M. Qin, Y. Hong, Selection and characterization of eight freshwater green algae strains for synchronous water purification and lipid production, Front. Environ. Sci. Eng., 10 (2016) 548–558.
  35. G.F. Kan, C.J. Shi, X.F. Wang, Q.J. Xie, M. Wang, X.L. Wang, J.L. Miao, Acclimatory responses to high-salt stress in Chlamydomonas (Chlorophyta, Chlorophyceae) from Antarctica, Acta Oceanolog. Sin., 31 (2012) 116–124.
  36. Q. Zhang, T. Wang, Y. Hong, Investigation of initial pH effects on growth of an oleaginous microalgae Chlorella sp. HQ for lipid production and nutrient uptake, Water Sci. Technol., 70 (2014) 712–719.
  37. C.H. Yao, J.N. Ai, X.P. Cao, S. Xue, Salinity manipulation as an effective method for enhanced starch production in the marine microalga Tetraselmis subcordiformis, Bioresour. Technol., 146 (2013) 663–671.
  38. N. Kalita, G. Baruah, R. Chandra, D. Goswami, J. Talukdar, M.C. Kalita, Ankistrodesmus falcatus: a promising candidate for lipid production, its biochemical analysis and strategies to enhance lipid productivity, J. Microbiol. Biotechnol. Res., 1 (2017) 148–157.
  39. L. Xia, J. Rong, H. Yang, Q. He, D. Zhang, C. Hu, NaCl as an effective inducer for lipid accumulation in freshwater microalgae Desmodesmus abundans. Bioresour. Technol., 161 (2014) 402–409.
  40. J.Y. Wu, C.H. Lay, C.C. Chen, S.Y. Wu, Lipid accumulating microalgae cultivation in textile wastewater: environmental parameters optimization, J. Taiwan Inst. Chem. Eng., 79 (2017) 1–6.
  41. D. Saranya, S. Shanthakumar, Green microalgae for combined sewage and tannery effluent treatment: performance and lipid accumulation potential, J. Environ. Manage., 241 (2019) 167–178.
  42. L. Wang, Y. Li, P. Chen, M. Min, Y. Chen, J. Zhu, R.R. Ruan, Anaerobic digested dairy manure as a nutrient supplement for cultivation of oil-rich green microalgae Chlorella sp. Bioresour. Technol., 101 (2010) 2623–2628.
  43. S. Chinnasamy, A. Bhatnagar, R.W. Hunt, K.C. Das, Microalgae cultivation in a wastewater dominated by carpet mill effluents for biofuel applications, Bioresour. Technol., 101 (2010) 3097–3105.