141
Views
27
CrossRef citations to date
0
Altmetric
Research Article

New Strategy for the cultivation of microalgae using microencapsulation

Pages 567-576 | Published online: 29 Sep 2008

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (2)

Noor Raihana Abu Sepian, Nur Hidayah Mat Yasin & Norazwina Zainol. (2021) Evaluation of factors for cells growth of immobilized Chlorella vulgaris via factorial design approach. Chemical Engineering Communications 208:5, pages 601-612.
Read now
N. R. Abu Sepian, N. H. Mat Yasin, N. Zainol, N. H. Rushan & A. L. Ahmad. (2019) Fatty acid profile from immobilised Chlorella vulgaris cells in different matrices. Environmental Technology 40:9, pages 1110-1117.
Read now

Articles from other publishers (25)

Inkar Castellanos-Huerta, Gabriela Gómez-Verduzco, Guillermo Tellez-Isaias, Guadalupe Ayora-Talavera, Bernardo Bañuelos-Hernández, Víctor Manuel Petrone-García, Isidro Fernández-Siurob, Luis Alberto Garcia-Casillas & Gilberto Velázquez-Juárez. (2022) Dunaliella salina as a Potential Biofactory for Antigens and Vehicle for Mucosal Application. Processes 10:9, pages 1776.
Crossref
Noor Raihana Abu Sepian, Nur Hidayah Mat Yasin & Nagaarasan Ramesh. (2022) Immobilization Method to Separate Microalgae Biomass for Fatty Acid Methyl Ester Production. Chemical Engineering & Technology 45:8, pages 1474-1481.
Crossref
Ajam Shekh, Aditi Sharma, Peer M Schenk, Gulshan Kumar & Sandeep Mudliar. (2021) Microalgae cultivation: photobioreactors, CO 2 utilization, and value‐added products of industrial importance . Journal of Chemical Technology & Biotechnology 97:5, pages 1064-1085.
Crossref
Noor Raihana Abu Sepian, Nur Hidayah Mat Yasin & Norazwina Zainol. (2022) The feasibility of immobilized Chlorella vulgaris cultivated in palm oil mill effluent for lipid and fatty acid methyl ester production. Materials Today: Proceedings 57, pages 1071-1077.
Crossref
Svetlana Vasilieva, Elena Lobakova & Alexei Solovchenko. 2021. Environmental Biotechnology Vol. 3. Environmental Biotechnology Vol. 3 193 220 .
N R Abu Sepian, N H Mat Yasin & N Zainol. (2020) Characterization of gel beads used for immobilization of Chlorella vulgaris and enhancement its density for lipid production. IOP Conference Series: Materials Science and Engineering 991:1, pages 012007.
Crossref
Sara Pourkarimi, Ahmad Hallajisani, Asghar Alizadehdakhel, Amideddin Nouralishahi & Abooali Golzary. (2020) Factors affecting production of beta-carotene from Dunaliella salina microalgae. Biocatalysis and Agricultural Biotechnology 29, pages 101771.
Crossref
Zaki M. Al-Hasawi, Mohammad I. Abdel-Hamid, Adel W. Almutairi & Hussein E. Touliabah. (2020) Response of Pseudokirchneriella subcapitata in Free and Alginate Immobilized Cells to Heavy Metals Toxicity. Molecules 25:12, pages 2847.
Crossref
N R Abu Sepian, N H Mat Yasin & N Zainol. (2020) Effect of glucose concentration and cultivation days on Chlorella vulgaris growth via immobilization technique for biodiesel production. IOP Conference Series: Materials Science and Engineering 778:1, pages 012113.
Crossref
Kishore Kumar Kadimpati, Sujatha Sanneboina, Narasimha Golla, Sridevi Ayla, Wojciech Skarka & Yoshiharu Mitoma. 2020. Microbial Strategies for Techno-economic Biofuel Production. Microbial Strategies for Techno-economic Biofuel Production 171 206 .
Bruna de Souza Fonseca, Thaiane Marques da Silva & Cristiano Ragagnin de Menezes. 2020. Pigments from Microalgae Handbook. Pigments from Microalgae Handbook 635 653 .
Nirupama Mallick. 2020. Immobilization of Enzymes and Cells. Immobilization of Enzymes and Cells 453 471 .
Hojun Lee, Juseon Lee, Murray T. Brown, Jihae Park, Christophe Vieira & Taejun Han. (2019) Toxicity testing of cosmetic ingredients using gametophyte beads of the brown alga Undaria pinnatifida (Laminariales, Phaeophyta). Journal of Applied Phycology 31:3, pages 2011-2023.
Crossref
K Vijayalakshmi, Srinivasan Latha & Maximas Rose. 2017. Industrial Applications of Marine Biopolymers. Industrial Applications of Marine Biopolymers 545 575 .
Hugo Milhazes-Cunha & Ana Otero. (2017) Valorisation of aquaculture effluents with microalgae: The Integrated Multi-Trophic Aquaculture concept. Algal Research 24, pages 416-424.
Crossref
S. G. Vasilieva, E. S. Lobakova, A. A. Lukyanov & A. E. Solovchenko. (2016) Immobilized microalgae in biotechnology. Moscow University Biological Sciences Bulletin 71:3, pages 170-176.
Crossref
Mayashree B. Syiem & Amrita Bhattacharjee. (2014) Structural and functional stability of regenerated cyanobacteria following immobilization. Journal of Applied Phycology 27:2, pages 743-753.
Crossref
Ivonne Cruz, Yoav Bashan, Gustavo Hernàndez-Carmona & Luz E. de-Bashan. (2013) Biological deterioration of alginate beads containing immobilized microalgae and bacteria during tertiary wastewater treatment. Applied Microbiology and Biotechnology 97:22, pages 9847-9858.
Crossref
E. Wolfgang Becker. 2013. Handbook of Microalgal Culture. Handbook of Microalgal Culture 671 691 .
Hannu Leino, Sergey N. Kosourov, Lyudmila Saari, Kaarina Sivonen, Anatoly A. Tsygankov, Eva-Mari Aro & Yagut Allahverdiyeva. (2012) Extended H2 photoproduction by N2-fixing cyanobacteria immobilized in thin alginate films. International Journal of Hydrogen Energy 37:1, pages 151-161.
Crossref
Luz E. de-Bashan & Yoav Bashan. (2010) Immobilized microalgae for removing pollutants: Review of practical aspects. Bioresource Technology 101:6, pages 1611-1627.
Crossref
A. Hosseini Tafreshi & M. Shariati. (2009) Dunaliella biotechnology: methods and applications . Journal of Applied Microbiology 107:1, pages 14-35.
Crossref
Bily Aguilar-May & María del Pilar Sánchez-Saavedra. (2008) Growth and removal of nitrogen and phosphorus by free-living and chitosan-immobilized cells of the marine cyanobacterium Synechococcus elongatus. Journal of Applied Phycology 21:3, pages 353-360.
Crossref
Nirupama Mallick. 2006. Immobilization of Enzymes and Cells. Immobilization of Enzymes and Cells 373 391 .
Aharon Oren. 2002. Halophilic Microorganisms and their Environments. Halophilic Microorganisms and their Environments 357 388 .

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.