Knowledge Agora



Similar Articles

Title Capture, Storage and Utilization of Carbon Dioxide by Microalgae and Production of Biomaterials
ID_Doc 8756
Authors Bertolini, M; Conti, F
Title Capture, Storage and Utilization of Carbon Dioxide by Microalgae and Production of Biomaterials
Year 2021
Published Environmental And Climate Technologies, 25.0, 1
Abstract Carbon dioxide emissions are strongly related to climate change and increase of global temperature. Whilst a complete change in producing materials and energy and in traffic and transportation systems is already in progress and circular economy concepts are on working, Carbon Capture and Storage (CCS) and Carbon Capture and Utilisation (CCU) represent technically practicable operative strategies. Both technologies have main challenges related to high costs, so that further advanced research is required to obtain feasible options. In this article, the focus is mainly on CCU using microalgae that are able to use CO2 as building block for value-added products such as biofuels, EPS (Extracellular Polymeric Substances), biomaterials and electricity. The results of three strains (UTEX 90, CC 2656, and CC 1010) of the microalgal organism Chlamydomonas reinhardtii are discussed. The results about ideal culture conditions suggest incubation temperature of 30 degrees C, pH between 6.5 and 7.0, concentrations of acetate between 1.6 and 2.3 g L-1 and of ammonium chloride between 0.1 and 0.5 g L-1, the addition of glucose This green microalga is a valid model system to optimize the production of biomass, carbohydrates and lipids.
PDF

Similar Articles

ID Score Article
20109 Wang, X; Qin, ZH; Hao, TB; Ye, GB; Mou, JH; Balamurugan, S; Bin, XY; Buhagiar, J; Wang, HM; Lin, CSK; Yang, WD; Li, HY A combined light regime and carbon supply regulation strategy for microalgae-based sugar industry wastewater treatment and low-carbon biofuel production to realise a circular economy(2022)
1801 Giwa, A; Abuhantash, F; Chalermthai, B; Taher, H Bio-Based Circular Economy and Polygeneration in Microalgal Production from Food Wastes: A Concise Review(2022)Sustainability, 14, 17
26435 Choi, D; Kwon, D; Lee, DY; Jung, S; Chen, WH; Lim, JK; Park, SJ; Park, WK; Kwon, EE Strategic Use of Extremophilic Microalgae as a Carbon Source in the Thermo-Chemical Process(2023)Acs Sustainable Chemistry & Engineering, 11, 16
14057 Mahmoud, RH; Wang, ZX; He, Z Production of algal biomass on electrochemically recovered nutrients from anaerobic digestion centrate(2022)
2956 Chhandama, M; Rai, PK; Lalawmpuii Coupling bioremediation and biorefinery prospects of microalgae for circular economy(2023)
10259 Tawfik, A; Ismail, S; Elsayed, M; Qyyum, MA; Rehan, M Sustainable microalgal biomass valorization to bioenergy: Key challenges and future perspectives(2022)
13180 Choudhary, S; Tripathi, S; Poluri, KM Microalgal-Based Bioenergy: Strategies, Prospects, and Sustainability(2022)Energy & Fuels, 36, 24
7686 Chambonniere, P; Ramírez-Romero, A; Dimitriades-Lemaire, A; Sassi, JF; Delrue, F Photosynthetic Carbon Uptake Correlates with Cell Protein Content during Lipid Accumulation in the Microalga Chlorella vulgaris NIES 227(2022)Fermentation-Basel, 8, 11
22485 Nandhini, R; Sivaprakash, B; Rajamohan, N; Vo, DVN Carbon-free hydrogen and bioenergy production through integrated carbon capture and storage technology for achieving sustainable and circular economy- A review(2023)
20295 Hoang, AT; Sirohi, R; Pandey, A; Nizetic, S; Lam, SS; Chen, WH; Luque, R; Thomas, S; Arici, M; Pham, VV Biofuel production from microalgae: challenges and chances(2023)Phytochemistry Reviews, 22, 4
Scroll