Cultivating microalgae in wastewater for biomass production, pollutant removal, and atmospheric carbon mitigation; a review

被引:304
作者
Shahid, Ayesha [2 ]
Malik, Sana [2 ]
Zhu, Hui [1 ]
Xu, Jianren [3 ]
Nawaz, Muhammad Zohaib [4 ,5 ]
Nawaz, Shahid [6 ]
Alam, Md. Asraful [7 ]
Mehmood, Muhammad Aamer [1 ,2 ]
机构
[1] Sichuan Univ Sci & Engn, Sch Bioengn, Zigong 643000, Peoples R China
[2] Govt Coll Univ Faisalabad, Dept Bioinformat & Biotechnol, Bioenergy Res Ctr, Faisalabad 38000, Pakistan
[3] North Minzu Univ, Coll Biosci & Engn, Yinchuan 750021, Ningxia, Peoples R China
[4] Xiamen Univ, Inst Marine Microbes & Ecospheres, Coll Ocean & Earth Sci, State Key Lab Marine Environm Sci, Xiamen, Fujian, Peoples R China
[5] Univ Agr Faisalabad, Dept Comp Sci, Faisalabad 38000, Pakistan
[6] Univ Agr Faisalabad, Dept Chem, Faisalabad 38000, Pakistan
[7] Zhengzhou Univ, Sch Chem Engn, Zhengzhou 450001, Henan, Peoples R China
关键词
Microalgae cultivation; Wastewater treatment; Biorefineries; CO2; fixation; Cost-effective; CHLORELLA-VULGARIS CULTIVATION; ADVANCED OXIDATION PROCESSES; PALM OIL MILL; NUTRIENT REMOVAL; LIPID PRODUCTION; INDUSTRIAL-WASTE; BIOCHEMICAL-COMPOSITION; HETEROTROPHIC CULTIVATION; OLEAGINOUS MICROALGAE; ORGANIC CONTAMINANTS;
D O I
10.1016/j.scitotenv.2019.135303
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Water shortage is one of the leading global problems along with the depletion of energy resources and environmental deterioration. Recent industrialization, global mobility, and increasing population have adversely affected the freshwater resources. The wastewater sources are categorized as domestic, agricultural and industrial effluents and their disposal into water bodies poses a harmful impact on human and animal health due to the presence of higher amounts of nitrogen, phosphorus, sulfur, heavy metals and other organic/inorganic pollutants. Several conventional treatment methods have been employed, but none of those can be termed as a universal method due to their high cost, less efficiency, and nonenvironment friendly nature. Alternatively, wastewater treatment using microalgae (phycoremediation) offers several advantages over chemical-based treatment methods. Microalgae cultivation using wastewater offers the highest atmospheric carbon fixation rate (1.83 kg CO2/kg of biomass) and fastest biomass productivity (40-50% higher than terrestrial crops) among all terrestrial bio-remediators with concomitant pollutant removal (80-100%). Moreover, the algal biomass may contain high-value metabolites including omega-3-fatty acids, pigments, amino acids, and high sugar content. Hence, after extraction of high-value compounds, residual biomass can be either directly converted to energy through thermochemical transformation or can be used to produce biofuels through biological fermentation or transesterification. This review highlights the recent advances in microalgal biotechnology to establish a biorefinery approach to treat wastewater. The articulation of wastewater treatment facilities with microalgal biorefinery, the use of microalgal consortia, the possible merits, and demerits of phycoremediation are also discussed. The impact of wastewater-derived nutrient stress and its exploitation to modify the algal metabolite content in view of future concerns of cost-benefit ratios of algal biorefineries is also highlighted. (C) 2019 Elsevier B.V. All rights reserved.
引用
收藏
页数:17
相关论文
共 209 条
[1]   Feasibility of carbon dioxide sequestration by Spongiochloris sp microalgae during petroleum wastewater treatment in airlift bioreactor [J].
Abid, Abdeldjalil ;
Saidane, Faten ;
Hamdi, Moktar .
BIORESOURCE TECHNOLOGY, 2017, 234 :297-302
[2]   Comparison of Five Advanced Oxidation Processes for Degradation of Pesticide in Aqueous Solution [J].
Affam, Augustine Chioma ;
Chaudhuri, Malay ;
Kutty, Shamsul Rahman M. .
BULLETIN OF CHEMICAL REACTION ENGINEERING AND CATALYSIS, 2018, 13 (01) :179-186
[3]   Citric acid enhances the phytoextraction of chromium, plant growth, and photosynthesis by alleviating the oxidative damages in Brassica napus L. [J].
Afshan, Sehar ;
Ali, Shafaqat ;
Bharwana, Saima Aslam ;
Rizwan, Muhammad ;
Farid, Mujahid ;
Abbas, Farhat ;
Ibrahim, Muhammad ;
Mehmood, Muhammad Aamer ;
Abbasi, Ghulam Hasan .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2015, 22 (15) :11679-11689
[4]  
Afzal I, 2017, ALGAE BASED POLYMERS, BLENDS, AND COMPOSITES: CHEMISTRY, BIOTECHNOLOGY AND MATERIALS SCIENCES, P55, DOI 10.1016/B978-0-12-812360-7.00003-3
[5]   Treatment and utilization of dairy industrial waste: A review [J].
Ahmad, Talha ;
Aadil, Rana Muhammad ;
Ahmed, Haassan ;
Rahman, Ubaid Ur ;
Soares, Bruna C. V. ;
Souza, Simone L. Q. ;
Pimentel, Tatiana C. ;
Scudino, Hugo ;
Guimaraes, Jonas T. ;
Esmerino, Erick A. ;
Freitas, Monica Q. ;
Almada, Rafael B. ;
Vendramel, Simone M. R. ;
Silva, Marcia C. ;
Cruz, Adriano G. .
TRENDS IN FOOD SCIENCE & TECHNOLOGY, 2019, 88 :361-372
[6]   Phycoremediation of Tannery Wastewater Using Microalgae Scenedesmus Species [J].
Ajayan, Kayil Veedu ;
Selvaraju, Muthusamy ;
Unnikannan, Pachikaran ;
Sruthi, Palliyath .
INTERNATIONAL JOURNAL OF PHYTOREMEDIATION, 2015, 17 (10) :907-916
[7]   Enhanced removal of Zn2+ or Cd2+ by the flocculating Chlorella vulgaris JS']JSC-7 [J].
Alam, Md. Asraful ;
Wan, Chun ;
Zhao, Xin-Qing ;
Chen, Li-Jie ;
Chang, Jo-Shu ;
Bai, Feng-Wu .
JOURNAL OF HAZARDOUS MATERIALS, 2015, 289 :38-45
[8]   Overview of microbes based fabricated biogenic nanoparticles for water and wastewater treatment [J].
Ali, Imran ;
Peng, Changsheng ;
Khan, Zahid M. ;
Naz, Iffat ;
Sultan, Muhammad ;
Ali, Mohsin ;
Abbasi, Irfan A. ;
Islam, Tariqul ;
Ye, Tong .
JOURNAL OF ENVIRONMENTAL MANAGEMENT, 2019, 230 :128-150
[9]   Freshwater microalgae selection for simultaneous wastewater nutrient removal and lipid production [J].
Alvarez-Diaz, P. D. ;
Ruiz, J. ;
Arbib, Z. ;
Barragan, J. ;
Garrido-Perez, M. C. ;
Perales, J. A. .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2017, 24 :477-485
[10]   Enhanced lipid accumulation and biomass yield of Scenedesmus quadricauda under nitrogen starved condition [J].
Anand, Javee ;
Arumugam, Muthu .
BIORESOURCE TECHNOLOGY, 2015, 188 :190-194