Browse > Article
http://dx.doi.org/10.4014/jmb.1709.09040

Flocculation Effect of Alkaline Electrolyzed Water (AEW) on Harvesting of Marine Microalga Tetraselmis sp.  

Lee, Su-Jin (Jeju International Marine Science Research & Education Center, Korea Institute of Ocean Science & Technology)
Choi, Woo-Seok (Jeju International Marine Science Research & Education Center, Korea Institute of Ocean Science & Technology)
Park, Gun-Hoo (Jeju International Marine Science Research & Education Center, Korea Institute of Ocean Science & Technology)
Kim, Tae-Ho (Jeju International Marine Science Research & Education Center, Korea Institute of Ocean Science & Technology)
Oh, Chulhong (Jeju International Marine Science Research & Education Center, Korea Institute of Ocean Science & Technology)
Heo, Soo-Jin (Jeju International Marine Science Research & Education Center, Korea Institute of Ocean Science & Technology)
Kang, Do-Hyung (Jeju International Marine Science Research & Education Center, Korea Institute of Ocean Science & Technology)
Publication Information
Journal of Microbiology and Biotechnology / v.28, no.3, 2018 , pp. 432-438 More about this Journal
Abstract
Microalgae hold promise as a renewable energy source for the production of biofuel, as they can convert light energy into chemical energy through photosynthesis. However, cost-efficient harvest of microalgae remains a major challenge to commercial-scale algal biofuel production. We first investigated the potential of electrolytic water as a flocculant for harvesting Tetraselmis sp. Alkaline electrolyzed water (AEW) is produced at the cathode through water electrolysis. It contains mineral ions such as $Na^+$, $K^+$, $Ca^{2+}$, and $Mg^{2+}$ that can act as flocculants. The flocculation activity with AEW was evaluated via culture density, AEW concentration, medium pH, settling time, and ionic strength analyses. The flocculation efficiency was 88.7% at 20% AEW (pH 8, 10 min) with a biomass concentration of 2 g/l. The initial biomass concentration and medium pH had significant influences on the flocculation activity of AEW. A viability test of flocculated microalgal cells was conducted using Evans blue stain, and the cells appeared intact. Furthermore, the growth rate of Tetraselmis sp. in recycled flocculation medium was similar to the growth rate in fresh F/2 medium. Our results suggested that AEW flocculation could be a very useful and affordable methodology for fresh biomass harvesting with environmentally friendly easy operation in part of the algal biofuel production process.
Keywords
Marine microalgae; harvesting; flocculation; alkaline electrolyzed water; Tetraselmis sp.;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 Vandamme D, Pontes SCV, Goiris K, Foubert I, Pinoy LJJ, Muylaert K. 2011. Evaluation of electro-coagulation-flocculation for harvesting marine and freshwater microalgae. Biotechnol. Bioeng. 108: 2320-2329.
2 Danquah MK, Ang L, Uduman N, Moheimani N, Forde GM. 2009. Dewatering of microalga culture for biodiesel production: exploring polymer flocculation and tangential flow filtration. J. Chem. Technol. Biotechnol. 84: 1078-1083.   DOI
3 Renault F, Sancey B, Badot P-M, Crini G. 2009. Chitosan for coagulation/flocculation processes - an eco-friendly approach. Eur. Polym. J. 45: 1337-1348.
4 Papazi A, Makridis P, Divanach P. 2010. Harvesting Chlorella minutissima using cell coagulants. J. Appl. Phycol. 22: 349-355.   DOI
5 Vandamme D, Foubert I, Meesschaert B, Muylaert K. 2010. Flocculation of microalgae using cationic starch. J. Appl. Phycol. 22: 525-530.   DOI
6 Bilanovic D, Shelef G, Sukenik A. 1988. Flocculation of microalgae with cationic polymers - effects of medium salinity. Biomass 17: 65-76.   DOI
7 Razack SA, Velayutham V, Thangavelu V. 2014. Medium optimization and in vitro antioxidant activity of exopolysaccharide produced by Bacillus subtilis. Korean J. Chem. Eng. 31: 296-303.   DOI
8 Sirajunnisa AR, Surendhiran D. 2014. Nanosilver fabrication mediated by exopolysaccharides from Pseudomonas fluorescens and its biological activities. Magnesium 5: 6.
9 Vandamme D, Foubert I, Muylaert K. 2013. Flocculation as a low-cost method for harvesting microalgae for bulk biomass production. Trends Biotechnol. 31: 233-239.   DOI
10 Bosma R, van Spronsen WA, Tramper J, Wijffels RH. 2003. Ultrasound, a new separation technique to harvest microalgae. J. Appl. Phycol. 15: 143-153.   DOI
11 Uduman N, Qi Y, Danquah MK, Forde GM, Hoadley A. 2010. Dewatering of microalga cultures: a major bottleneck to algae-based fuels. J. Renew. Sustain. Energy 2: 012701.   DOI
12 Grima EM, Belarbi E-H, Fernandez FA, Medina AR, Chisti Y. 2003. Recovery of microalga biomass and metabolites: process options and economics. Biotechnol. Adv. 20: 491-515.   DOI
13 Becker E. 2007. Micro-algae as a source of protein. Biotechnol. Adv. 25: 207-210.   DOI
14 Chisti Y. 2007. Biodiesel from microalgae. Biotechnol. Adv. 25: 294-306.   DOI
15 Brennan L, Owende P. 2010. Biofuels from microalgae - a review of technologies for production, processing, and extractions of biofuels and co-products. Renew. Sustain. Energy Rev. 14: 557-577.   DOI
16 Shen Y, Yuan W, Pei Z, Wu Q, Mao E. 2009. Microalgae mass production methods. Trans. ASABE 52: 1275-1287.   DOI
17 Kim C, Hung Y-C, Brackett RE. 2000. Roles of oxidation-reduction potential in electrolyzed oxidizing and chemically modified water for the inactivation of food-related pathogens. J. Food Prot. 63: 19-24.   DOI
18 Lee AK, Lewis DM, Ashman PJ. 2013. Harvesting of marine microalgae by electroflocculation: the energetics, plant design, and economics. Appl. Energy 108: 45-53.   DOI
19 Poelman E, De Pauw N, Jeurissen B. 1997. Potential of electrolytic flocculation for recovery of micro-algae. Resour. Conserv. Recycl. 19: 1-10.   DOI
20 Shirahata S, Kabayama S, Nakano M, Miura T, Kusumoto K, Gotoh M, et al. 1997. Electrolyzed-reduced water scavenges active oxygen species and protects DNA from oxidative damage. Biochem. Biophys. Res. Commun. 234: 269-274.   DOI
21 Huang Y-R, Hung Y-C, Hsu S-Y, Huang Y-W, Hwang D-F. 2008. Application of electrolyzed water in the food industry. Food Control 19: 329-345.   DOI
22 Guillard RR. 1975. Culture of phytoplankton for feeding marine invertebrates, pp. 29-60. In Smith WL, Chanley MH (eds.). Culture of Marine Invertebrate Animals. Springer, Boston, MA.
23 Widholm JM. 1972. The use of fluorescein diacetate and phenosafranine for determining viability of cultured plant cells. Stain Technol. 47: 189-194.   DOI
24 Crippen RW, Perrier J. 1974. The use of neutral red and Evans blue for live-dead determinations of marine plankton (with comments on the use of rotenone for inhibition of grazing). Stain Technol. 49: 97-104.   DOI
25 Garzon-Sanabria AJ, Davis RT, Nikolov ZL. 2012. Harvesting Nannochloris oculata by inorganic electrolyte flocculation: effect of initial cell density, ionic strength, coagulant dosage, and media pH. Bioresour. Technol. 118: 418-424.   DOI
26 Sukenik A, Shelef G. 1984. Algal autoflocculation - verification and proposed mechanism. Biotechnol. Bioeng. 26: 142-147.
27 Lee S-M, Choi H-J. 2015. Harvesting of microalgae species using Mg-sericite flocculant. Bioprocess Biosyst. Eng. 38: 2323-2330.
28 Ndikubwimana T, Zeng X, Liu Y, Chang J-S, Lu Y. 2014. Harvesting of microalgae Desmodesmus sp. F51 by bioflocculation with bacterial bioflocculant. Algal Res. 6: 186-193.   DOI
29 Liu J, Zhu Y, Tao Y, Zhang Y, Li A, Li T, et al. 2013. Freshwater microalgae harvested via flocculation induced by pH decrease. Biotechnol. Biofuels 6: 1.   DOI
30 Wu Z, Zhu Y, Huang W, Zhang C, Li T, Zhang Y, et al. 2012. Evaluation of flocculation induced by pH increase for harvesting microalgae and reuse of flocculated medium. Bioresour. Technol. 110: 496-502.   DOI
31 Zheng H, Gao Z, Yin J, Tang X, Ji X, Huang H. 2012. Harvesting of microalgae by flocculation with poly ($\gamma$-glutamic acid). Bioresour. Technol. 112: 212-220.   DOI
32 Farid MS, Shariati A, Badakhshan A, Anvaripour B. 2013. Using nano-chitosan for harvesting microalga Nannochloropsis sp. Bioresour. Technol. 131: 555-559.   DOI
33 Wu J, Liu J, Lin L, Zhang C, Li A, Zhu Y, et al. 2015. Evaluation of several flocculants for flocculating microalgae. Bioresour. Technol. 197: 495-501.   DOI
34 Hadjoudja S, Deluchat V, Baudu M. 2010. Cell surface characterisation of Microcystis aeruginosa and Chlorella vulgaris. J. Colloid Interface Sci. 342: 293-299.   DOI
35 Gonzalez-Fernandez C, Ballesteros M. 2013. Microalgae autoflocculation: an alternative to high-energy consuming harvesting methods. J. Appl. Phycol. 25: 991-999.   DOI