Role of microbial carbon capture cells in carbon sequestration and energy generation during wastewater treatment: A sustainable solution for cleaner environment
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[1] M. Awasthi,et al. Environmental pollution mitigation through utilization of carbon dioxide by microalgae. , 2023, Environmental pollution.
[2] Chao Li,et al. Enhancing simultaneous electrosynthesis of CO2 and nitrogen removal in microbial fuel cell (MFC) cathode compartment by adding Fe–C/biochar compound substrates , 2023, Journal of Power Sources.
[3] A. Smouni,et al. Integrated microalgae-based biorefinery for wastewater treatment, industrial CO2 sequestration and microalgal biomass valorization: A circular bioeconomy approach , 2023, Environmental Advances.
[4] L. Nunes,et al. Advances in Carbon Capture and Use (CCU) Technologies: A Comprehensive Review and CO2 Mitigation Potential Analysis , 2022, Clean Technologies.
[5] Akansha Shrivastava,et al. Lignocellulosic biomass based microbial fuel cells: Performance and applications , 2022, Journal of Cleaner Production.
[6] A. K. Mungray,et al. Recent advances in osmotic microbial fuel cell technology: A review , 2022, Journal of the Indian Chemical Society.
[7] J. Theerthagiri,et al. Architecting the Aupt Alloys for Hydrazine Oxidation as an Anolyte in Fuel Cell: Comparative Analysis of Hydrazine Splitting and Water Splitting for Energy-Saving H2 Generation , 2022, SSRN Electronic Journal.
[8] A. Shahid,et al. Decontamination of industrial wastewater using microalgae integrated with biotransformation of the biomass to green products , 2022, Energy Nexus.
[9] Wei Wang,et al. Bioelectrochemical processes and cellulosic carbon source enhance the autotrophic and heterotrophic denitrification of low C/N ratio wastewater in tidal flow constructed wetland - Microbial fuel cells , 2022, Journal of Cleaner Production.
[10] J. Theerthagiri,et al. Multiscale Design of 3d Metal–Organic Frameworks (M-Btc, M: Cu, Co, Ni) Via Plal Enabling Bifunctional Electrocatalysts for Robust Overall Water Splitting , 2022, SSRN Electronic Journal.
[11] Zhi-chao Wu,et al. The role of microbiome in carbon sequestration and environment security during wastewater treatment. , 2022, The Science of the total environment.
[12] M. Mazzotti,et al. Potential for hydrogen production from sustainable biomass with carbon capture and storage , 2022, Renewable and Sustainable Energy Reviews.
[13] Luong N. Nguyen,et al. Microalgae-based carbon capture and utilization: A critical review on current system developments and biomass utilization , 2022, Critical Reviews in Environmental Science and Technology.
[14] A. Nawaz,et al. Microbial Fuel Cells: Insight into Simultaneous Wastewater treatment and bioelectricity generation , 2022, Process Safety and Environmental Protection.
[15] A. Heshmati,et al. Environmental implications of economic complexity and its role in determining how renewable energies affect CO2 emissions , 2022, Applied Energy.
[16] Soumya Pandit,et al. Scalability of microbial electrochemical technologies: Applications and challenges. , 2021, Bioresource technology.
[17] A. Kraslawski,et al. Impact of seawater desalination and wastewater treatment on water stress levels and greenhouse gas emissions: The case of Chile. , 2021, The Science of the total environment.
[18] D. Large,et al. Potential impacts of oxygen impurities in carbon capture and storage on microbial community composition and activity , 2021, International Journal of Greenhouse Gas Control.
[19] P. Donnellan,et al. Algae-assisted microbial fuel cells: A practical overview , 2021 .
[20] M. Nematchoua,et al. Strategies and scenarios to reduce energy consumption and CO2 emission in the urban, rural and sustainable neighbourhoods , 2021 .
[21] A. Goonetilleke,et al. Water-sediment interactions and mobility of heavy metals in aquatic environments. , 2021, Water research.
[22] Shifen Cheng,et al. Emission characteristics and control scenario analysis of VOCs from heavy-duty diesel trucks. , 2021, Journal of environmental management.
[23] Seung Jun Lee,et al. Heteroatom-doped graphene-based materials for sustainable energy applications: A review , 2021 .
[24] Mohammad Ali Zahed,et al. Biotechnology for carbon capture and fixation: Critical review and future directions. , 2021, Journal of environmental management.
[25] R. Shahnazi,et al. The effects of renewable energy, spatial spillover of CO2 emissions and economic freedom on CO2 emissions in the EU , 2021 .
[26] M. Ashokkumar,et al. Integrated technique of pulsed laser irradiation and sonochemical processes for the production of highly surface-active NiPd spheres , 2021 .
[27] L. Luo,et al. On-site CO2 bio-sequestration in anaerobic digestion: Current status and prospects. , 2021, Bioresource technology.
[28] J. Baeyens,et al. Recent progress in genetically modified microalgae for enhanced carbon dioxide sequestration , 2021, Biomass and Bioenergy.
[29] Brendan T. Higgins,et al. Factors impacting the effectiveness of biological pretreatment for the alleviation of algal growth inhibition on anaerobic digestate , 2020 .
[30] Y. Oh,et al. Recent developments and key barriers to microbial CO2 electrobiorefinery. , 2020, Bioresource technology.
[31] Pradeep Verma,et al. Microalgae-based biorefineries for sustainable resource recovery from wastewater , 2020 .
[32] F. Fantozzi,et al. Life cycle water consumption for oxyfuel combustion power generation with carbon capture and storage , 2020 .
[33] J. Arun,et al. A conceptual review on microalgae biorefinery through thermochemical and biological pathways: Bio-circular approach on carbon capture and wastewater treatment , 2020 .
[34] Sai Manoj Pudukotai Dinakarrao,et al. Photosynthetic microorganisms (Algae) mediated bioelectricity generation in microbial fuel cell: Concise review , 2020 .
[35] M. Ghangrekar,et al. Optimizing performance of a microbial carbon-capture cell using Box-Behnken design , 2020 .
[36] Balasubramanian Velramar,et al. Pilot scale wastewater treatment, CO2 sequestration and lipid production using microalga, Neochloris aquatica RDS02 , 2020, International journal of phytoremediation.
[37] R. Farnood,et al. Recent advances in microbial CO2 fixation and conversion to value-added products , 2020 .
[38] W. Xiang,et al. Potential microalgal strains for converting flue gas CO2 into biomass , 2020, Journal of Applied Phycology.
[39] E. J. Anthony,et al. Recent advances in carbon dioxide utilization , 2020, Renewable and Sustainable Energy Reviews.
[40] R. M. Darbra,et al. Review of Initiatives and Methodologies to Reduce CO2 Emissions and Climate Change Effects in Ports , 2020, International journal of environmental research and public health.
[41] Smita Raghuvanshi,et al. Trends in Carbon Dioxide (CO2) Fixation by Microbial Cultivations , 2020, Current Sustainable/Renewable Energy Reports.
[42] J. Nielsen,et al. Third-generation biorefineries as the means to produce fuels and chemicals from CO2 , 2020, Nature Catalysis.
[43] D. Das,et al. Improvement of bioelectricity generation and microalgal productivity with concomitant wastewater treatment in flat-plate microbial carbon capture cell , 2020 .
[44] M. Sarrafzadeh,et al. Interaction between Chlorella vulgaris and nitrifying-enriched activated sludge in the treatment of wastewater with low C/N ratio , 2020 .
[45] Seung Jun Lee,et al. Fundamental aspects and recent advances in transition metal nitrides as electrocatalysts for hydrogen evolution reaction: A review , 2020 .
[46] S. Das,et al. Application of bioelectrochemical systems for carbon dioxide sequestration and concomitant valuable recovery: A review , 2019 .
[47] Jiaguo Yu,et al. Highly Selective CO2 Capture and Its Direct Photochemical Conversion on Ordered 2D/1D Heterojunctions , 2019, Joule.
[48] Guanyi Chen,et al. The interactions of algae-activated sludge symbiotic system and its effects on wastewater treatment and lipid accumulation. , 2019, Bioresource technology.
[49] W. Sand,et al. Direct microbial transformation of carbon dioxide to value-added chemicals: A comprehensive analysis and application potentials. , 2019, Bioresource technology.
[50] Zhenjun Wang,et al. Progress, challenges and solutions of research on photosynthetic carbon sequestration efficiency of microalgae , 2019, Renewable and Sustainable Energy Reviews.
[51] R. Beach,et al. Combining the effects of increased atmospheric carbon dioxide on protein, iron, and zinc availability and projected climate change on global diets: a modelling study , 2019, The Lancet. Planetary health.
[52] Gurwinder Singh,et al. Biomass derived porous carbon for CO2 capture , 2019, Carbon.
[53] Muhammad Kamran Khan,et al. Impact of globalization, economic factors and energy consumption on CO2 emissions in Pakistan. , 2019, The Science of the total environment.
[54] Yin Li,et al. Engineering Microorganisms for Enhanced CO2 Sequestration. , 2019, Trends in biotechnology.
[55] Kaiqin Xu,et al. Electro-conversion of carbon dioxide (CO2) to low-carbon methane by bioelectromethanogenesis process in microbial electrolysis cells: The current status and future perspective. , 2019, Bioresource technology.
[56] Chong Liu,et al. Perfluorocarbon nanoemulsion promotes the delivery of reducing equivalents for electricity-driven microbial CO2 reduction , 2019, Nature Catalysis.
[57] Ahmad Baroutaji,et al. Outlook of carbon capture technology and challenges. , 2019, The Science of the total environment.
[58] D. W. Dhar,et al. Overview of Carbon Capture Technology: Microalgal Biorefinery Concept and State-of-the-Art , 2019, Front. Mar. Sci..
[59] Cheng Wang,et al. A dynamic and continuous allowances allocation methodology for the prevention of carbon leakage: Emission control coefficients , 2019, Applied Energy.
[60] Nilay Shah,et al. China’s roadmap to low-carbon electricity and water: Disentangling greenhouse gas (GHG) emissions from electricity-water nexus via renewable wind and solar power generation, and carbon capture and storage , 2019, Applied Energy.
[61] J. Guest,et al. Wastewater treatment for carbon capture and utilization , 2018, Nature Sustainability.
[62] Naoki Kagi,et al. Effects of low-level inhalation exposure to carbon dioxide in indoor environments: A short review on human health and psychomotor performance. , 2018, Environment international.
[63] S. Atsumi,et al. Nonphotosynthetic Biological CO2 Reduction. , 2018, Biochemistry.
[64] A. Nizami,et al. CO2 capture and storage: A way forward for sustainable environment. , 2018, Journal of environmental management.
[65] Licheng Liu,et al. Electrochemical Reduction of Carbon Dioxide to Value-added Products: The Electrocatalyst and Microbial Electrosynthesis. , 2018, Chemical record.
[66] J. Chakrabarty,et al. A review on biological systems for CO2 sequestration: Organisms and their pathways , 2018, Environmental Progress & Sustainable Energy.
[67] S. Myers,et al. Impact of anthropogenic CO2 emissions on global human nutrition , 2018, Nature Climate Change.
[68] C. Pérez-Labajos,et al. Reduction in CO2 emissions in RoRo/Pax ports equipped with automatic mooring systems. , 2018, Environmental pollution.
[69] J. Liao,et al. Construction and evolution of an Escherichia coli strain relying on nonoxidative glycolysis for sugar catabolism , 2018, Proceedings of the National Academy of Sciences.
[70] A. Beheshti,et al. Global transcriptomic analysis suggests carbon dioxide as an environmental stressor in spaceflight: A systems biology GeneLab case study , 2018, Scientific Reports.
[71] C. Greene,et al. Integrating Algae with Bioenergy Carbon Capture and Storage (ABECCS) Increases Sustainability , 2018 .
[72] E. Kakaras,et al. The CO2 economy: Review of CO2 capture and reuse technologies , 2018 .
[73] Jiří Jaromír Klemeš,et al. Advances in Process Integration research for CO2 emission reduction – A review , 2017 .
[74] Yue‐Jun Zhang,et al. The indirect energy consumption and CO2 emission caused by household consumption in China: an analysis based on the input–output method , 2017 .
[75] S. Chaabouni,et al. The dynamic links between carbon dioxide (CO2) emissions, health spending and GDP growth: A case study for 51 countries , 2017, Environmental research.
[76] Chao-yun Li,et al. Urban CO2 emissions in Xi’an and Bangalore by commuters: implications for controlling urban transportation carbon dioxide emissions in developing countries , 2017, Mitigation and Adaptation Strategies for Global Change.
[77] Amjad Ali,et al. The Impact of Globalization on CO2 Emissions in China , 2017 .
[78] M. Takriff,et al. Palm oil mill effluent treatment and CO2 sequestration by using microalgae—sustainable strategies for environmental protection , 2017, Environmental Science and Pollution Research.
[79] P. Cristiani,et al. Assisting cultivation of photosynthetic microorganisms by microbial fuel cells to enhance nutrients recovery from wastewater. , 2017, Bioresource technology.
[80] P. Cristiani,et al. Influences of dissolved oxygen concentration on biocathodic microbial communities in microbial fuel cells. , 2017, Bioelectrochemistry.
[81] Christopher A. Trickett,et al. The chemistry of metal–organic frameworks for CO 2 capture, regeneration and conversion , 2017 .
[82] Scott M Smith,et al. Effects of short‐term mild hypercapnia during head‐down tilt on intracranial pressure and ocular structures in healthy human subjects , 2017, Physiological reports.
[83] A. H. Khoja,et al. Wastewater treatment by local microalgae strains for CO2 sequestration and biofuel production , 2017, Applied Water Science.
[84] M. Ghangrekar,et al. Simultaneous Wastewater Treatment, Algal Biomass Production and Electricity Generation in Clayware Microbial Carbon Capture Cells , 2017, Applied Biochemistry and Biotechnology.
[85] M. A. Kassim,et al. Carbon dioxide (CO2) biofixation by microalgae and its potential for biorefinery and biofuel production. , 2017, The Science of the total environment.
[86] K. Bailey,et al. Effect of low-level CO2 on innate inflammatory protein response to organic dust from swine confinement barns , 2017, Journal of Occupational Medicine and Toxicology.
[87] R. Yegani,et al. Membrane-sparger vs. membrane contactor as a photobioreactors for carbon dioxide biofixation of Synechococcus elongatus in batch and semi-continuous mode , 2016 .
[88] Yin Li,et al. Synthetic biology for CO2 fixation , 2016, Science China Life Sciences.
[89] Lu Lu,et al. Ambient CO2 capture and storage in bioelectrochemically mediated wastewater treatment. , 2016, Bioresource technology.
[90] K. Winzer,et al. Insights into CO2 Fixation Pathway of Clostridium autoethanogenum by Targeted Mutagenesis , 2016, mBio.
[91] R. Mehrotra,et al. Capturing atmospheric carbon: biological and nonbiological methods , 2016 .
[92] Anuska Mosquera-Corral,et al. Greenhouse Gases Emissions from Wastewater Treatment Plants: Minimization, Treatment, and Prevention , 2016 .
[93] R. Krupiczka,et al. Carbon dioxide absorption in a packed column using imidazolium based ionic liquids and MEA solution , 2016 .
[94] M. Takriff,et al. Biomass production and nutrients removal by a newly-isolated microalgal strain Chlamydomonas sp in palm oil mill effluent (POME) , 2016 .
[95] Duu-Jong Lee,et al. Microalgae-microbial fuel cell: A mini review. , 2015, Bioresource technology.
[96] Peng Wang,et al. Characteristic changes in algal organic matter derived from Microcystis aeruginosa in microbial fuel cells. , 2015, Bioresource technology.
[97] Ji-ti Zhou,et al. CO2 Fixation, Lipid Production, and Power Generation by a Novel Air-Lift-Type Microbial Carbon Capture Cell System. , 2015, Environmental science & technology.
[98] Yong Yuan,et al. Bioelectricity Generation in a Microbial Fuel Cell with a Self-Sustainable Photocathode , 2015, TheScientificWorldJournal.
[99] M. Ghangrekar,et al. Improving performance of microbial fuel cell while controlling methanogenesis by Chaetoceros pretreatment of anodic inoculum. , 2015, Bioresource technology.
[100] Z. Wen,et al. Use of wavelength-selective optical light filters for enhanced microalgal growth in different algal cultivation systems. , 2015, Bioresource technology.
[101] S. Nandeshwar,et al. Green Technical Methods for Treatment of Waste Water Using Microalgae and its Application in the Management of Natural Water Resources: A Review , 2014 .
[102] Ramesh Kakarla,et al. Photoautotrophic microalgae Scenedesmus obliquus attached on a cathode as oxygen producers for microbial fuel cell (MFC) operation , 2014 .
[103] Millennia Foy,et al. Relationship Between Carbon Dioxide Levels and Reported Headaches on the International Space Station , 2014, Journal of occupational and environmental medicine.
[104] Feng Zhao,et al. Light intensity affects the performance of photo microbial fuel cells with Desmodesmus sp. A8 as cathodic microorganism , 2014 .
[105] Pablo Cañizares,et al. Microbial fuel cell with an algae-assisted cathode: A preliminary assessment , 2013 .
[106] S. Razzak,et al. Integrated CO2 capture, wastewater treatment and biofuel production by microalgae culturing—A review , 2013 .
[107] L. Edwards,et al. Comorbidity, systemic inflammation and outcomes in the ECLIPSE cohort. , 2013, Respiratory medicine.
[108] Mark C M van Loosdrecht,et al. Mineral CO2 sequestration by environmental biotechnological processes. , 2013, Trends in biotechnology.
[109] R. Guo,et al. A system combining microbial fuel cell with photobioreactor for continuous domestic wastewater treatment and bioelectricity generation , 2013 .
[110] Yan-Rong He,et al. Reactive oxygen species (ROS) generated by cyanobacteria act as an electron acceptor in the biocathode of a bio-electrochemical system. , 2013, Biosensors & bioelectronics.
[111] J. Ghani,et al. Phycoremediation in anaerobically digested Palm Oil Mill Effluent using cyanobacterium, Spirulina platensis , 2012 .
[112] C. H. Lee,et al. Comparison of electrogenic capabilities of microbial fuel cell with different light power on algae grown cathode. , 2012, Bioresource technology.
[113] Minghua Zhou,et al. Power generation enhancement in novel microbial carbon capture cells with immobilized Chlorella vulgaris , 2012 .
[114] Man Kee Lam,et al. Current status and challenges on microalgae-based carbon capture. , 2012 .
[115] Gordon A. Hill,et al. Continuous microbial fuel cell using a photoautotrophic cathode and a fermentative anode , 2012 .
[116] A P Blaber,et al. Impaired cerebrovascular autoregulation and reduced CO₂ reactivity after long duration spaceflight. , 2012, American journal of physiology. Heart and circulatory physiology.
[117] Debabrata Das,et al. Microbial carbon capture cell using cyanobacteria for simultaneous power generation, carbon dioxide sequestration and wastewater treatment. , 2012, Bioresource technology.
[118] Yanyan Su,et al. Synergistic cooperation between wastewater-born algae and activated sludge for wastewater treatment: influence of algae and sludge inoculation ratios. , 2012, Bioresource technology.
[119] Jo‐Shu Chang,et al. Nitrogen starvation strategies and photobioreactor design for enhancing lipid content and lipid production of a newly isolated microalga Chlorella vulgaris ESP‐31: Implications for biofuels , 2011, Biotechnology journal.
[120] Ivan S. Cole,et al. Corrosion of pipelines used for CO2 transport in CCS: Is it a real problem? , 2011 .
[121] Dahai Tang,et al. CO2 biofixation and fatty acid composition of Scenedesmus obliquus and Chlorella pyrenoidosa in response to different CO2 levels. , 2011, Bioresource technology.
[122] Tiangang Luan,et al. Effect of nutrients on the biodegradation of tributyltin (TBT) by alginate immobilized microalga, Chlorella vulgaris, in natural river water. , 2011, Journal of hazardous materials.
[123] Jo‐Shu Chang,et al. Characterization of photosynthetic carbon dioxide fixation ability of indigenous Scenedesmus obliquus isolates. , 2010 .
[124] Yingkuan Wang,et al. Cultivation of Green Algae Chlorella sp. in Different Wastewaters from Municipal Wastewater Treatment Plant , 2010, Applied biochemistry and biotechnology.
[125] Siew-Moi Phang,et al. Use of Chlorella vulgaris for bioremediation of textile wastewater. , 2010, Bioresource technology.
[126] Chao Li,et al. Sequestration of CO2 discharged from anode by algal cathode in microbial carbon capture cells (MCCs). , 2010, Biosensors & bioelectronics.
[127] C. Soccol,et al. Potential carbon dioxide fixation by industrially important microalgae. , 2010, Bioresource technology.
[128] Paitoon Tontiwachwuthikul,et al. Corrosion Behavior of Carbon Steel in the Monoethanolamine−H2O−CO2−O2−SO2 System: Products, Reaction Pathways, and Kinetics , 2009 .
[129] Peng Liang,et al. A completely anoxic microbial fuel cell using a photo-biocathode for cathodic carbon dioxide reduction , 2009 .
[130] Allan Hart,et al. Cryogenic CO2 capture in natural gas , 2009 .
[131] Jacob Nygaard Knudsen,et al. Experience with CO2 capture from coal flue gas in pilot-scale: Testing of different amine solvents , 2009 .
[132] S. Kentish,et al. The effect of condensable minor components on the gas separation performance of polymeric membranes for carbon dioxide capture , 2009 .
[133] Paitoon Tontiwachwuthikul,et al. Corrosion in MEA units for CO2 capture: Pilot plant studies , 2009 .
[134] Li Yue,et al. Fundamental study of CO2 control technologies and policies in China , 2008 .
[135] Y. Zuo,et al. Electricity generation by Rhodopseudomonas palustris DX-1. , 2008, Environmental science & technology.
[136] M. Stenstrom,et al. The carbon-sequestration potential of municipal wastewater treatment. , 2008, Chemosphere.
[137] Wei Zhang,et al. Improved hydrogen photoproduction regulated by carbonylcyanide m-chlorophenylhrazone from marine green alga Platymonas subcordiformis grown in CO2-supplemented air bubble column bioreactor , 2008, Biotechnology Letters.
[138] Li-Hua Cheng,et al. Optimization of Carbon Dioxide Fixation by Chlorella vulgaris Cultivated in a Membrane-Photobioreactor , 2007 .
[139] J. Costa,et al. Isolation and selection of microalgae from coal fired thermoelectric power plant for biofixation of carbon dioxide , 2007 .
[140] Francis Meunier,et al. Carbon dioxide capture by indirect thermal swing adsorption using 13X zeolite , 2006 .
[141] Ma Eugenia Martínez,et al. Nitrogen and phosphorus removal from urban wastewater by the microalga Scenedesmus obliquus , 2000 .
[142] Ankur Singh,et al. Bioelectrochemical system for environmental remediation of toxicants , 2022, Microbial Biodegradation and Bioremediation.
[143] Ashutosh Kumar Singh,et al. Microbes-assisted phytoremediation of contaminated environment: Global status, progress, challenges, and future prospects , 2022, Phytoremediation Technology for the Removal of Heavy Metals and Other Contaminants from Soil and Water.
[144] Donglei Sun,et al. Low-carbon economic dispatch strategy for renewable integrated power system incorporating carbon capture and storage technology , 2022, Energy Reports.
[145] Ming-hua Zhou,et al. Enhancement of CO2 biofixation and bioenergy generation using a novel airlift type photosynthetic microbial fuel cell. , 2019, Bioresource technology.
[146] M. Battaglia,et al. Reappraising Preclinical Models of Separation Anxiety Disorder, Panic Disorder, and CO2 Sensitivity: Implications for Methodology and Translation into New Treatments. , 2018, Current topics in behavioral neurosciences.
[147] A. Dixit,et al. Microbial fuel cell powered by lipid extracted algae: A promising system for algal lipids and power generation. , 2018, Bioresource technology.
[148] Xuyao Jiang,et al. The interactions of algae-bacteria symbiotic system and its effects on nutrients removal from synthetic wastewater. , 2018, Bioresource technology.
[149] Andrea Ramírez,et al. Unravelling uncertainty and variability in early stage techno-economic assessments of carbon capture technologies , 2017 .
[150] Jin Liu,et al. Algae for biofuels: An emerging feedstock , 2016 .
[151] Henry Rusinek,et al. Cerebrovascular reactivity to carbon dioxide in Alzheimer's disease. , 2013, Journal of Alzheimer's disease : JAD.
[152] Qiang Wang,et al. CO2 capture by solid adsorbents and their applications: current status and new trends , 2011 .
[153] Mj Martin Tuinier,et al. Cryogenic CO2 capture using dynamically operated packed beds , 2010 .
[154] Chiun-Hsun Chen,et al. Lipid accumulation and CO2 utilization of Nannochloropsis oculata in response to CO2 aeration. , 2009, Bioresource technology.
[155] R. Evitts,et al. Growth kinetics of Chlorella vulgaris and its use as a cathodic half cell. , 2009, Bioresource technology.
[156] P. Show,et al. Biologically-mediated carbon capture and utilization by microalgae towards sustainable CO2 biofixation and biomass valorization – A review , 2022 .