Insight into recent advances in microalgae biogranulation in wastewater treatment.
暂无分享,去创建一个
[1] Keat-Teong Lee,et al. Emerging trends of microalgae bio-granulation research in wastewater treatment: A bibliometric analysis from 2011 to 2023 , 2023, Biocatalysis and Agricultural Biotechnology.
[2] Z. Lei,et al. Characteristics of algal-bacterial aerobic granular sludge treating real wastewater: Effects of algal inoculation and alginate-like exopolymers recovery. , 2023, Chemosphere.
[3] Ana S. Oliveira,et al. Bioremediation of coastal aquaculture effluents spiked with florfenicol using microalgae-based granular sludge - a promising solution for recirculating aquaculture systems. , 2023, Water research.
[4] P. Melidis,et al. A Critical Review on the Microbial Ecology of Landfill Leachate Treatment Systems , 2023, Sustainability.
[5] Chaofan Zhang,et al. Revealing the role of microalgae-bacteria niche for boosting wastewater treatment and energy reclamation in response to temperature , 2022, Environmental science and ecotechnology.
[6] J. van de Vossenberg,et al. Development of microalgal-bacterial aerobic granules for ammonium removal from wastewater in a photo sequencing batch reactor , 2022, Materials Today: Proceedings.
[7] P. Goh,et al. Microalgae-Enabled Wastewater Remediation and Nutrient Recovery through Membrane Photobioreactors: Recent Achievements and Future Perspective , 2022, Membranes.
[8] Bin Ji,et al. Cultivation of microalgal-bacterial granular sludge from activated sludge via granule inoculation: Performance and microbial community , 2022, Journal of Cleaner Production.
[9] Yucheng Chen,et al. A Review of the Role of Extracellular Polymeric Substances (EPS) in Wastewater Treatment Systems , 2022, International journal of environmental research and public health.
[10] R. Kirubagaran,et al. Evaluating the effect of various environmental factors on the growth of the marine microalgae, Chlorella vulgaris , 2022, Frontiers in Marine Science.
[11] D. Ocampo,et al. Trends on CO2 Capture with Microalgae: A Bibliometric Analysis , 2022, Molecules.
[12] Bin Ji,et al. Using carbon dioxide-added microalgal-bacterial granular sludge for carbon-neutral municipal wastewater treatment under outdoor conditions: Performance, granule characteristics and environmental sustainability. , 2022, The Science of the total environment.
[13] A. Albuquerque,et al. Optimization of Microalgae–Bacteria Consortium in the Treatment of Paper Pulp Wastewater , 2022, Applied Sciences.
[14] Luong N. Nguyen,et al. Microalgae-bacteria consortium for wastewater treatment and biomass production. , 2022, The Science of the total environment.
[15] W. Qin,et al. Cultivation of Microalgae in Unsterile Malting Effluent for Biomass Production and Lipid Productivity Improvement , 2022, Fermentation.
[16] V. Gadhamshetty,et al. A comprehensive review on the use of algal-bacterial systems for wastewater treatment with emphasis on nutrient and micropollutant removal , 2022, Bioengineered.
[17] Qian Wang,et al. Biogranulation process facilitates cost-efficient resources recovery from microalgae-based wastewater treatment systems and the creation of a circular bioeconomy. , 2022, The Science of the total environment.
[18] S. Negi,et al. Microalgae harvesting techniques: updates and recent technological interventions , 2022, Critical reviews in biotechnology.
[19] Jiang‐Shiou Hwang,et al. Biological Approaches Integrating Algae and Bacteria for the Degradation of Wastewater Contaminants—A Review , 2022, Frontiers in Microbiology.
[20] P. Lens,et al. A novel strategy for rapid development of a self-sustaining symbiotic algal-bacterial granular sludge: Applying algal-mycelial pellets as nuclei. , 2022, Water research.
[21] Chunli Wan,et al. Aggregation performance and adhesion behavior of microbes in response to feast/famine condition: Rapid granulation of aerobic granular sludge. , 2022, Environmental research.
[22] S. Ulgiati,et al. A Review about Microalgae Wastewater Treatment for Bioremediation and Biomass Production—A New Challenge for Europe , 2021, Environments.
[23] Cheng-Hua Liu,et al. CO2 improves the microalgal-bacterial granular sludge towards carbon-negative wastewater treatment. , 2021, Water Research.
[24] Chitsan Lin,et al. Co-culture of microalgae-activated sludge in sequencing batch photobioreactor systems: Effects of natural and artificial lighting on wastewater treatment. , 2021, Bioresource technology.
[25] Danyang Wang,et al. Effect of zero-valent iron and granular activated carbon on nutrient removal and community assembly of photogranules treating low-strength wastewater. , 2021, The Science of the total environment.
[26] Shih‐Hsin Ho,et al. Converting nitrogen and phosphorus wastewater into bioenergy using microalgae-bacteria consortia: a critical review. , 2021, Bioresource technology.
[27] S. Mudliar,et al. Microalgae Cultivation: Photobioreactors, CO2 Utilization, and Value-Added Products of Industrial Importance , 2021 .
[28] Zengshuai Zhang,et al. Bacterial-algal coupling system for high strength mariculture wastewater treatment: Effect of temperature on nutrient recovery and microalgae cultivation. , 2021, Bioresource technology.
[29] Izabela Krzemińska,et al. Extracellular Polymeric Substances (EPS) as Microalgal Bioproducts: A Review of Factors Affecting EPS Synthesis and Application in Flocculation Processes , 2021, Energies.
[30] J. Schnoor,et al. Sustainably Cultivating and Harvesting Microalgae through Sedimentation and Forward Osmosis Using Wastes , 2021, ACS omega.
[31] Brendan T. Higgins,et al. Interactions of microalgae-bacteria consortia for nutrient removal from wastewater: A review. , 2021, Chemosphere.
[32] N. Ren,et al. High value-added biomaterials recovery from granular sludge based wastewater treatment process , 2021 .
[33] Yingqun Ma,et al. Microalgal-Bacterial Granular Sludge Process in Non-Aerated Municipal Wastewater Treatment under Natural Day-Night Conditions: Performance and Microbial Community , 2021, Water.
[34] Gary S. Caldwell,et al. Immobilising Microalgae and Cyanobacteria as Biocomposites: New Opportunities to Intensify Algae Biotechnology and Bioprocessing , 2021, Energies.
[35] Yu Liu,et al. Microalgal-bacterial granular sludge for municipal wastewater treatment under simulated natural diel cycles: Performances-metabolic pathways-microbial community nexus , 2021 .
[36] Hassimi Abu Hasan,et al. Microalgal–bacterial granular sludge process for non-aerated aquaculture wastewater treatment , 2021, Bioprocess and Biosystems Engineering.
[37] A. Eldyasti,et al. Holistic insights into extracellular polymeric substance (EPS) in anammosx bacterial matrix and the potential sustainable biopolymer recovery: A review. , 2021, Chemosphere.
[38] Dabin Guo,et al. Cadmium-effect on performance and symbiotic relationship of microalgal-bacterial granules , 2021 .
[39] Yu Liu,et al. Temperature-effect on the performance of non-aerated microalgal-bacterial granular sludge process in municipal wastewater treatment. , 2021, Journal of environmental management.
[40] Seyedeh Fatemeh Mohsenpour,et al. Integrating micro-algae into wastewater treatment: A review. , 2021, The Science of the total environment.
[41] Shoyeb Khan,et al. Treatment of Wastewaters by Microalgae and the Potential Applications of the Produced Biomass—A Review , 2020, Water.
[42] Duu-Jong Lee,et al. Response and recovery of mature algal-bacterial aerobic granular sludge to sudden salinity disturbance in influent wastewater: Granule characteristics and nutrients removal/accumulation. , 2020, Bioresource technology.
[43] F. Ma,et al. Enhanced aerobic sludge granulation in a Sequencing Batch Reactor (SBR) by applying mycelial pellets , 2020 .
[44] Yuting Shi,et al. Microalgal-bacterial granular sludge process outperformed aerobic granular sludge process in municipal wastewater treatment with less carbon dioxide emissions , 2020, Environmental Science and Pollution Research.
[45] Yi Wang,et al. Integrating acidogenic fermentation and microalgae cultivation of bacterial-algal coupling system for mariculture wastewater treatment. , 2020, Bioresource technology.
[46] O. T. Iorhemen,et al. Effect of feeding strategy and organic loading rate on the formation and stability of aerobic granular sludge , 2020 .
[47] Y. Najjar,et al. Harvesting of microalgae by centrifugation for biodiesel production: A review , 2020 .
[48] Duu-Jong Lee,et al. Behavior of algal-bacterial granular sludge in a novel closed photo-sequencing batch reactor under no external O2 supply. , 2020, Bioresource technology.
[49] Y. Nancharaiah,et al. Development and performance of halophilic microalgae-colonized aerobic granular sludge for treating seawater-based wastewater , 2020 .
[50] Yu Liu,et al. Microalgal-bacterial granular sludge process: A game changer of future municipal wastewater treatment? , 2020, The Science of the total environment.
[51] Zhi-Wu Wang,et al. Feast/famine ratio determined continuous flow aerobic granulation. , 2020, The Science of the total environment.
[52] Z. Ren,et al. Biofilm Matrixome: Extracellular Components in Structured Microbial Communities. , 2020, Trends in microbiology.
[53] Duu-Jong Lee,et al. Fast cultivation and harvesting of oil-producing microalgae Ankistrodesmus falcatus var. acicularis fed with anaerobic digestion liquor via biogranulation in addition to nutrients removal. , 2020, The Science of the total environment.
[54] I. Mijakovic,et al. Technologies for biological removal and recovery of nitrogen from wastewater. , 2020, Biotechnology advances.
[55] Yingqun Ma,et al. A self-sustaining synergetic microalgal-bacterial granular sludge process towards energy-efficient and environmentally sustainable municipal wastewater treatment. , 2020, Water research.
[56] Duu-Jong Lee,et al. Rapid establishment and stable performance of a new algal-bacterial granule system from conventional bacterial aerobic granular sludge and preliminary analysis of mechanisms involved , 2020 .
[57] Xuezhi Zhang,et al. Enhanced Microalgal Harvesting Using Microalgae-Derived Extracellular Polymeric Substance as Flocculation Aid , 2020 .
[58] Z. Lei,et al. Achieving partial nitrification and high lipid production in an algal-bacterial granule system when treating low COD/NH4-N wastewater. , 2020, Chemosphere.
[59] R. Wijffels,et al. Impact of hydraulic retention time on community assembly and function of photogranules for wastewater treatment. , 2020, Water research.
[60] P. Show,et al. A review on microalgae cultivation and harvesting, and their biomass extraction processing using ionic liquids , 2020, Bioengineered.
[61] Duu-Jong Lee,et al. Isolation of microalgal strain from algal-bacterial aerobic granular sludge and examination on its contribution to granulation process during wastewater treatment in respect of nutrients removal, auto-aggregation capability and EPS excretion , 2019 .
[62] Z. Lei,et al. Microalgal-bacterial aggregates for wastewater treatment: A mini-review , 2019 .
[63] K. Mohanty,et al. A comprehensive review on microalgal harvesting strategies: Current status and future prospects , 2019 .
[64] M. V. van Loosdrecht,et al. Flame retardant property of flax fabrics coated by extracellular polymeric substances recovered from both activated sludge and aerobic granular sludge. , 2019, Water research.
[65] Stefan Dietze,et al. Microalgae wastewater treatment: Biological and technological approaches , 2019, Engineering in life sciences.
[66] A. Phan,et al. Microalgae cultivation and harvesting: Growth performance and use of flocculants - A review , 2019, Renewable and Sustainable Energy Reviews.
[67] J. Tay,et al. Rapid granulation of aerobic granular sludge: A mini review on operation strategies and comparative analysis , 2019, Bioresource Technology Reports.
[68] Z. Lei,et al. Effect of salinity on granulation, performance and lipid accumulation of algal-bacterial granular sludge , 2019, Bioresource Technology Reports.
[69] Ashwani Kumar Aggarwal,et al. Population–Urbanization–Energy Nexus: A Review , 2019, Resources.
[70] J. Tay,et al. Effect of light intensity on the characteristics of algal-bacterial granular sludge and the role of N-acyl-homoserine lactone in the granulation. , 2019, The Science of the total environment.
[71] Z. Lei,et al. Effects of light intensity on oxygen distribution, lipid production and biological community of algal-bacterial granules in photo-sequencing batch reactors. , 2019, Bioresource technology.
[72] Abhishek Dutta,et al. Performance of upflow anaerobic sludge blanket (UASB) reactor and other anaerobic reactor configurations for wastewater treatment: a comparative review and critical updates , 2018, Journal of Water Supply: Research and Technology-Aqua.
[73] R. Stuetz,et al. Comparing the performance of aerobic granular sludge versus conventional activated sludge for microbial log removal and effluent quality: Implications for water reuse. , 2018, Water research.
[74] Hongyu Wang,et al. Natural sunlight induced rapid formation of water-born algal-bacterial granules in an aerobic bacterial granular photo-sequencing batch reactor. , 2018, Journal of hazardous materials.
[75] Duu-Jong Lee,et al. Response of algal-bacterial granular system to low carbon wastewater: Focus on granular stability, nutrients removal and accumulation. , 2018, Bioresource technology.
[76] O. Y. Costa,et al. Microbial Extracellular Polymeric Substances: Ecological Function and Impact on Soil Aggregation , 2018, Front. Microbiol..
[77] C. Lan,et al. Effects of shear stress on microalgae - A review. , 2018, Biotechnology advances.
[78] S. K. Patidar,et al. Microalgae harvesting techniques: A review. , 2018, Journal of environmental management.
[79] Zhi-Wu Wang,et al. State of the art of aerobic granulation in continuous flow bioreactors. , 2018, Biotechnology advances.
[80] E. Hiltunen,et al. Microalgae Chlorella vulgaris biomass harvesting by natural flocculant: effects on biomass sedimentation, spent medium recycling and lipid extraction , 2018, Biotechnology for Biofuels.
[81] Chii-Dong Ho,et al. Co-cultivation of activated sludge and microalgae for the simultaneous enhancements of nitrogen-rich wastewater bioremediation and lipid production , 2018, Journal of the Taiwan Institute of Chemical Engineers.
[82] Lili Wei,et al. Characteristics and performance of aerobic algae-bacteria granular consortia in a photo-sequencing batch reactor. , 2018, Journal of hazardous materials.
[83] M. Hermansson,et al. The mechanisms of granulation of activated sludge in wastewater treatment, its optimization, and impact on effluent quality , 2018, Applied Microbiology and Biotechnology.
[84] P. M. Slegers,et al. Techno-economic evaluation of microalgae harvesting and dewatering systems , 2018 .
[85] P. Di Martino,et al. Extracellular polymeric substances, a key element in understanding biofilm phenotype , 2018, AIMS microbiology.
[86] Liang Wang,et al. Operation optimization of a photo-sequencing batch reactor for wastewater treatment: Study on influencing factors and impact on symbiotic microbial ecology. , 2018, Bioresource technology.
[87] K. A. Matis,et al. A perspective on flotation: a review , 2018 .
[88] P. Lens,et al. Enhancement of aerobic granulation and nutrient removal by an algal–bacterial consortium in a lab-scale photobioreactor , 2018 .
[89] A. Seco,et al. Wastewater nutrient removal in a mixed microalgae–bacteria culture: effect of light and temperature on the microalgae–bacteria competition , 2018, Environmental technology.
[90] A. U. Khan,et al. Bioremediation of textile wastewater and successive biodiesel production using microalgae , 2018 .
[91] V. Vadivelu,et al. Effect of famine-phase reduced aeration on polyhydroxyalkanoate accumulation in aerobic granules. , 2017, Bioresource technology.
[92] Duu-Jong Lee,et al. Stability of algal-bacterial granules in continuous-flow reactors to treat varying strength domestic wastewater. , 2017, Bioresource technology.
[93] G. Quijano,et al. Microalgal-bacterial aggregates: Applications and perspectives for wastewater treatment. , 2017, Biotechnology advances.
[94] G. Buitrón,et al. Influence of solar irradiance levels on the formation of microalgae-bacteria aggregates for municipal wastewater treatment , 2017 .
[95] E. Manea,et al. Overcoming Microalgae Harvesting Barrier by Activated Algae Granules , 2017, Scientific Reports.
[96] Hongyong Fan,et al. Development of algae-bacteria granular consortia in photo-sequencing batch reactor. , 2017, Bioresource technology.
[97] V. Vadivelu,et al. Dynamics of polyhydroxyalkanoate accumulation in aerobic granules during the growth-disintegration cycle. , 2015, Bioresource technology.
[98] Z. Lei,et al. Effect of algae growth on aerobic granulation and nutrients removal from synthetic wastewater by using sequencing batch reactors. , 2015, Bioresource technology.
[99] V. Vadivelu,et al. Aerobic dynamic feeding as a strategy for in situ accumulation of polyhydroxyalkanoate in aerobic granules. , 2014, Bioresource technology.
[100] J. Tay,et al. Enhancement of start-up of pilot-scale granular SBR fed with real wastewater , 2011 .
[101] D. Gao,et al. Comparison of Ca2+ and Mg2+ enhancing aerobic granulation in SBR. , 2010, Journal of hazardous materials.
[102] J. Tay,et al. Aerobic granulation in sequencing batch reactors with different reactor height/diameter ratios , 2009 .
[103] K. M. Isa,et al. EVALUATION OF PHENOL FORMALDEHYDE RESIN SYNTHESIZED FROM SUGARCANE BAGASSE BIO-OIL UNDER OPTIMIZED PARAMETERS , 2022 .
[104] Duu-Jong Lee,et al. Insight into the rapid biogranulation for suspended single-cell microalgae harvesting in wastewater treatment systems: Focus on the role of extracellular polymeric substances , 2022, Chemical Engineering Journal.
[105] N. Abdullah,et al. Rapid Development of Microalgae-Bacteria Granular Sludge Using Low-Strength Domestic Wastewater , 2021 .
[106] Jae Woo Lee,et al. Influence of activated sludge derived-extracellular polymeric substance (ASD-EPS) as bio-flocculation of microalgae for biofuel recovery , 2020 .
[107] Duu-Jong Lee,et al. Algae granulation for nutrients uptake and algae harvesting during wastewater treatment. , 2019, Chemosphere.
[108] J. Oleszkiewicz,et al. Granulation of activated sludge under low hydrodynamic shear and different wastewater characteristics. , 2017, Bioresource technology.