Review : Metode Pengeringan Lipid dari Mikroalgae Berpotensi sebagai Biodiesel

Authors

  • Meilya Suzan Triyastuti Politeknik Kelautan dan Perikanan Bitung

DOI:

https://doi.org/10.53416/stmj.v3i2.99

Keywords:

Biodiesel, Lipid, Mikroalga,

Abstract

Mikroalga mengandung kadar lemak tinggi. Kadar lemak pada mikroalga dapat dimanfaatkan sebagai biodiesel pengganti bahan bakar fosil. Mikroalga mengandung lipid yang tinggi. Mikroalga mempunyai efisiensi yang tinggi yaitu sepuluh kali leboh besar daripada tanaman darat dan dapat mengubah energi matahari menjadi energi kimia. Mikroalga berpotensi sebagai bahan biodiesel yang terbarukan, ramah lingkungan berkelanjutan di masa depan. Jenis mikroalga chlorella mempunyai kadar lipid dan produktivitas lipid tinggi. Convective drying menghasilkan kadar lipid yang tinggi dan effisien.   

 

 

References

Deng X, Li Y, Fei X. Microalgae: a promising feedstock for biodiesel. Afr J Microbiol Res 2009;3(13):1008e14.

Chisti Y. Biodiesel from microalgae. Biotechnol Adv 2007;25(3):294e306. [55] Sawayama S, Minowa T, Yokoyama SY. Possibility of renewable energy production and CO2 mitigation by thermochemical liquefaction of micro- algae. Biomass Bioenergy 1999;17(1):33e9.

Dote Y, Sawayama S, Inoue S, Minowa T, Yokoyama S. Recovery of liquid fuel from hydrocarbon-rich microalgae by thermochemical liquefaction. Fuel 1994;73(12):1855e7.

Rodolfi L, Chini Zittelli G, Bassi N, Padovani G, Biondi N, Bonini G, Tredici MR. Microalgae for oil: strain selection, induction of lipid synthesis and outdoor mass cultivation in a low-cost photobioreactor. Biotechnol Bioeng 2009;102(1):100e12.

Natrah FMI, Yosoff FM, Shariff M, Abas F, Mariana NS. Mariana, Screening of Malaysian indigenous microalgae for antioxidant properties and nutritional value. J Appl Phycol 2007;19:711e8.

Gouveia L, Oliveira AC. Microalgae as a raw material for biofuels production. J Ind Microbiol Biotechnol 2009;36:269e74.

Miao XL, Wu QY. High yield bio-oil production from fast pyrolysis by metabolic controlling of Chlorella protothecoides. J Biotechnol 2004;110: 85e93.

Peng W, Wu Q, Tu P, Zhao N. Pyrolytic characteristics of microalgae as renewable energy source determined by thermogravimetric analysis. Bio- resour Technol 2001;80(1):1e7.

Scragg AH, Illman AM, Carden A, Shales SW. Growth of microalgae with increased calorific values in a tubular bioreactor. Biomass Bioenergy 2002;23(1):67e73.

Nigam S, Rai MP, Sharma R. Effect of nitrogen on growth and lipid content of Chlorella pyrenoidosa. Am J Biochem Biotechnol 2011;7(3):124e9.

Gouveia L, Marques AE, da Silva TL, Reis A. Neochloris oleabundans UTEX #1185: a suitable renewable lipid source for biofuel production. Ind Micro- biol Biotechnol 2009;36:821e6.

Pai T, Lai W. Analyzing algae growth and oil production in a batch reactor under high nitrogen and phosphorus conditions. Int J Appl Sci Eng 2011;9(3): 161e8.

Weldy CS, Huesemann M. Lipid production by Dunaliella salina in batch culture: effects of nitrogen limitation and light intensity. U.S. Dept Energy J Undergrad Res 2007;7(1):115e22.

Minowa T, Yokoyama S, Kishimoto M, Okakura T. Oil production from algal cells by direct thermochemical liquefaction. Fuel 1995;74:1735e8.

Becker EW. Microalgae: biotechnology and microbiology. London: Cam- bridge University Press; 1994.

Damiani MC, Popovich CA, Constenla D, Leonardi PI. Lipid analysis in Hae- matococcus pluvialis to assess its potential use as a biodiesel feedstock. Bio- resour Technol 2010;101:3801e7.

Chiu SY, Kao CY, Tsai MT, Ong SC, Chen CH, Lin CS. Lipid accumulation and CO2 utilization of Nannochloropsis oculata in response to CO2 aeration. Bio- resour Technol 2009;100:833e8.

Mata TM, Martins AA, Caetano NS. Microalgae for biodiesel production and other applications: a review. Renew Sust Energ Rev 2010;14:217e32.

Ananyev G, Carrieri D, Dismukes GC. Optimization of metabolic capacity and flux through environmental cues to maximize hydrogen production by the Cyanobacterium arthrospira (Spirulina) maxima. Appl Environ Microbiol 2008;74:6102e13

Ghirardi ML, Zhang L, Lee JW, Flynn T, Seibert M, Greenbaum E, et al. Microalgae: a green source of renewable H2. Trends Biotechnol 2000;18(2): 506e11.

Choi SP, Nguyen MT, Sim SJ. Enzymatic pretreatment of Chlamydomonas reinhardtii biomass for ethanol production. Bioresour Technol 2010;101(14): 5330e6.

Saleem M, Chakrabarti MH, Raman AAA, Hasan DB, Daud WMAW, Mustafa A. Hydrogen production by Chlamydomonas reinhardtii in a two-stage process with and without illumination at alkaline pH. Int J Hydrogen Energy 2012;37(6):4930e4.

Hemschemeier A, Melis A, Happe T. Analytical approaches to photobiological hydrogen production in unicellular green algae. Photosynth Res 2009;102(2e3):523e40.

Burgess SJ, Tamburic B, Zemichael F, Hellgardt K, Nixon PJ. Solar-driven hydrogen production in green algae. Adv Appl Microbiol 2011;75:71e110.

Huntley ME, Redalje DG. CO2 mitigation and renewable oil from photosyn- thetic microbes: a new appraisal. Mitig Adapt Strat Glob Change 2007;12: 573e608.

Seefeldt LC. Utah group plans to make biodiesel from algae. Ind Bioprocess 2007;29:5e6.

Zhou N, Zhang Y, Wu X, Gong X, Wang Q. Hydrolysis of Chlorella biomass for fermentable sugars in the presence of HCl and MgCl2. Bioresour Technol 2011;102(21):10158e61.

Kotzabasis K, Hatziathanasiou A, Bengoa-Ruigomez MV, Kentouri M, Divanach P. Methanol as alternative carbon source for quicker efficient production of the microalgae Chlorella minutissima: role of the concentration and frequence of administration. J Biotechnol 1999;70:357e62.

Chen Y-H, Walker TH. Biomass and lipid production of heterotrophic microalgae Chlorella protothecoides by using biodiesel-derived crude glyc- erol. Biotechnol Lett 2011;33:1973e83.

Li X, Xu H, Wu Q. Large-scale biodiesel production from microalga Chlorella protothecoides through heterotrophic cultivation in bioreactors. Biotechnol Bioeng 2007;98(4):764e71.

Endo H, Hosaya H, Koibuchi T. Growth yields of Chlorella regularis in dark- heterotrophic continuous cultures using acetate: studies on Chlorella regu- laris, heterotrophic fast-growing strain (III). J Ferment Tech 1977;55:369e79.

Hirano A, Ueda R, Hirayama S, Ogushi Y. CO2 fixation and ethanol production with microalgal photosynthesis and intracellular anaerobic fermentation. Energy 1997;22(2e3):137e42.

Harun R, Danquah MK. Influence of acid pre-treatment on microalgal biomass for bioethanol production. Process Biochem 2011;46(1):304e9.

Harun R, Danquah MK, Forde GM. Microbial biomass as a fermentation feedstock for bioethanol production. J Chem Technol Biotechnol 2010;85: 199e203.

Shirai F, Kunii K, Sato C, Teramoto Y, Mizuki E, Nakayama S. Cultivation of microalgae in the solution from the desalting of soy sauce waste treatment and utilization of the algal biomass for ethanol fermentation. World J Microbiol Biotechnol 1998;14:839e42.

Li Y, Horsman M, Wu N, Lan CQ, Dubois-Calero N. Biofuels from microalgae. Biotechnol Prog 2008;24(4):815e20.

Li Q, Du W, Liu D. Perspectives of microbial oils for biodiesel production. Appl Microbiol Biotechnol 2008;80:749e56.

Guan YF, Deng MC, Yu XJ, Zhang W. Two-stage photo-biological production of hydrogen by marine green alga Platymonas subcordiformis. Biochem Eng J 2004;19:69e73.

Schulz R, Schnackenberg J, Stangier K, Wünschiers R, Zinn T, Senger H. In: Zaborsky Oskar R, editor. Light-dependent hydrogen production of the green alga Scenedesmus obliquus. New York and London: BioHydrogen Plenum Press; 1999. pp. 243e51.

Papazi A, Andronis E, Ioannidis NE, Chaniotakis N, Kotzabasis K. High yields of hydrogen production induced by meta-substituted dichlorophenols biodegradation from the green alga Scenedesmus obliquus. PLoS One 2012;7(11):e49037

Eline Ryckebosch, Koenraad Muylaert, Mia Eeckhout, Tony Ruyssen, and Imogen Foubert. 2011. Influence of Drying and Storage on Lipid and Carotenoid Stability of the Microalga Phaeodactylum tricornutum. Journal of Agricultural and Food Chemistry.59, 11063–11069

Cecchi HM. Fundamentos teóricos e práticos em análise de alimentos. 2 ed Campinas, SP: Unicamp; 2003.

Ryckebosch, E.; Muylaert, K.; Eeckhout, M.; Ruyssen, T.; Foubert, I. Influence of drying and storage on lipid and carotenoid stability of the microalga Phaeodactylum tricornutum. Journal of Agricultural and Food Chemistry 2011, 59, 11063–11069.

A. S. Foust, L.A. Wenzel, C.W. Clump, L. Maus, L.B. Andersen, Prinsip-prinsip Operasi Unit, John-Wiley & Sons, New York, 1980.

Ana Paula Biz, Lúcio Cardozo-Filho, Everton Fernando Zanoelo, Drying dynamics of microalgae (Chlorella pyrenoidosa) dispersion droplets. Chemical Engineering & Processing: Process Intensification 138 (2019) 41–48 Contents

Milledge, J.J.; Heaven, S. A review of the harvesting of micro-algae for biofuel production. Reviews in Environmental Science and Biotechnology 2013, 12, 165–178.

Oliveira, E.G.; Rosa, G.S.; Moraes, M.A.; Pinto, L.A.A. Characterization of thin layer drying of Spirulina platensis utilizing perpendicular air flow. Bioresource Technology 2009, 100, 1297– 1303.

Ching-Lung Chen, Jo-Shu Chang, and Duu-Jong Lee. Dewatering and Drying Methods for Microalgae. Drying Technology, 33: 443–454, 2015

Balasubramanian, R.K.; Yen Doan, T.T.; Obbard, J.P. Factors affecting cellular lipid extraction from marine microalgae. Chemical Engineering Journal 2013, 215–216, 929–936.

Guldhe, A.; Singh, B.; Rawat, I.; Ramluckan, K.; Bux, F. Efficacy of drying and cell disruption techniques on lipid recovery from micro- algae for biodiesel production. Fuel 2014, 128, 46–52.

Zepka, L.Q., Lopes, E.J., Goldbeck, R. & Queiroz, M.I. (2007). Production and biochemical profile of the microalgae Aphanothece microscopica Na¨geli submitted to different drying conditions. Chemical Engineering and Process: Process Intensification, 47, 1305–1310.

Oliveira, E.G.; Duarte, J.H.; Moraes, K.; Crexi, V.T. Pinto, L.A.A. Optimisation of Spirulina platensis convective drying: Evaluation of phycocyanin loss and lipid oxidation. International Journal of Food Science and Technology 2010, 45, 1572–1578.

Babalis, S.J. & Belessiotis, V.G. (2004). Influence of the drying conditions on the drying constants and moisture diffusivity during the thin-layer drying of figs. Journal of Food Engineering, 65, 449– 458

Rodrigo Pobletea, Ernesto Cortes, Juan Macchiavello, José Bakit. 2019. Factors influencing solar drying performance of the red algae Gracilaria chilensis. Renewable Energy. Doi:10.1016/j.renene.2018.04.042

Prakash, J.; Pushparaj, B.; Carlozzi, P.; Torzillo, G.; Montaini, E.; Materassi, R. Microalgal biomass drying by a simple solar device. International Journal of Solar Energy 1997, 18(4), 303–311.

Balasubramanian, R.K.; Yen Doan, T.T.; Obbard, J.P. Factors affecting cellular lipid extraction from marine microalgae. Chemical Engineering Journal 2013, 215–216, 929–936.

Guldhe, A.; Singh, B.; Rawat, I.; Ramluckan, K.; Bux, F. Efficacy of drying and cell disruption techniques on lipid recovery from micro- algae for biodiesel production. Fuel 2014, 128, 46–52.

N. S. Rathore, N.L. Panwar, Design and development of energy efficient solar tunnel dryer for industrial drying, Clean Technol. Environ. Policy. 13 (2011) 125–132.

A. Saleh, I. Badran, Modeling and experimental studies on a domestic solar dryer, 496 Renew. Energy. 34 (2009) 2239–2245.

Hallenbeck PC, Benemann JR. Biological hydrogen production: fundamentals and limiting processes. Int J Hydrogen Energy 2002;27:1185e93.

Demirbas A. Social, economic, environmental and policy aspects of biofuels. Energy Educ Sci Technol Part B Soc Educ Stud 2010;2:75e109.

Chen CY, Yeh KL, Aisyah R, Lee DJ, Chang JS. Cultivation, photobioreactor design and harvesting of microalgae for biodiesel production: a critical re- view. Bioresour Technol 2011;102:71e81.

Campbell CJ, Laherrère JH. The end of cheap oil. Sci Am 1998;278(3):78e83.

Ho S-H, Chen C-Y, Lee D-J, Chang J-S. Perspectives on microalgal CO2-emis- sion mitigation systems e a review. Biotechnol Adv 2011;29:189e98.

Ho S-H, Chen C-Y, Chang J-S. Effect of light intensity and nitrogen starvation on CO2 fixation and lipid/carbohydrate production of an indigenous micro- alga Scenedesmus obliquus CNW-N. Bioresour Technol 2012;113:244e52.

L. Christenson, R. Sims, Production and harvesting of microalgae for wastewater treatment, biofuels, and bioproducts, Biotechnol. Adv. 29 (2011) 686–702.

B. Antizar-Ladislao, J.L. Turrion-Gomez, Second-generation biofuels and local bioenergy systems, Biofuels Bioprod. Biorefin. 2 (2008) 455–469.

Brown, MR, SW Jeffrey, JK Volkman, GA Dunstan. “Nutritional properties of microalgae for mariculture”. Aquaculture 151 (1997): 315– 331

Batista, G.A.S. Surek, C. Benincá, M.L. Corazza, E.F. Zanoelo, Cyclic pressur- ization assisted extraction of lipids from microalgae for biodiesel production: non- equilibrium and equilibrium data, Fuel 163 (2016) 133–138, https://doi.org/10. 1016/j.fuel.2015.09.051.

V. Viegas, Extraction and Characterization of the Lipids from Chlorella pyrenoidosa for Faaes Production, Dissertation Federal University of Rio Grande, Rio Grande, Brazil, 2010.

F. Yang, W. Xiang, X. Sun, H. Wu, T. Li, L. Long, A novel lipid extraction method from wet microalga Picochlorum sp. at room temperature, Mar. Drugs 12 (2014) 1258–1270, https://doi.org/10.3390/md12031258.

Falkowski, P.G., Katz, M.E., Knoll, A.H., Quigg, A., Raven, J.A., Schofield, O., Taylor, F.J.R., 2004. The evolution of modern eukaryotic phytoplankton. Sci. 305, 354-360.

Richmond, A., 2004. Handbook of microalgal Culture: biotechnology and applied phycology, Blackwell Science Ltd., USA.

Guedes C., Barbosa A., Amaro C.R., Pereira H.M., & Malcata X. (2011). Microalgae and cyanobacterial cell extracts for use as natural antibacterial additives against food pathogens. International Journal of Food Science & Technology, 46(4), 862–870.

Raja, R., Hemaiswarya, S., Ashok Kumar, N., Sridhar, S., Rengasamy, R., 2008. A perspective on the biotechnological potential of microalgae. Crit. Rev. Microbiol. 34, 77–88.

W. Becker, Microalgae for human and animal nutrition, in: Handb. Microalgal Cult., John Wiley & Sons, Ltd., 2013, pp. 461–503, http://dx.doi.org/ 10.1002/9781118567166.ch25.

Sathasivam R, Radhakrishnan R, Hashem A, Abd-Allah EF: Microalgae metabolites: a rich source for food and medicine. Saudi J Biol Sci 2017. in press.

Lauritano C, Martı´n J, de la Cruz M, Reyes F, Romano G, Lanora A:

First identification of marine diatoms with anti-tuberculosis activity. Nat Sci Rep 2018, 8:2284-2294.

Chew KW, Yap JY, Show PL, Suan NH, Juan JC, Ling TC, Lee DJ, Chang JS: Microalgae biorefinery: high value products perspectives. Bioresour Technol 2017, 229:53-62.17.

Khan MI, Shin JH, Kim JD: The promising future of microalgae:current status, challenges, and optimization of a sustainable and renewable industry for biofuels, feed, and other products. Microb Cell Fact 2018, 17:36-57.

Rodrigues DB, Menezes CR, Mercadante AZ, Jacob-Lopes E, Zepka LQ: Bioactive pigments from microalgae Phormidium autumnale. Food Res Int 2015, 77:273-279.

Mobin, S. M. A., Chowdhury, H., Alam, F., 2019. Commercially important bioproducts from microalgae and their current applications – A review. Energy Procedia. Vol 160, 752-760.

Hu H, Li J Y, Pan X R, Zhang F, Ma L L, Wang H J, Zeng R J: Different DHA or EPA production responses to nutrient stress in the marine microalga Tisochrysis lutea and the freshwater microalga Monodus subterraneus. Sci Total Environ 2019, 656:140-149.

Mujumdar, A. 2004. Guide To Industrial Drying. International Workshop and Symposium on Industrial Drying. Mumbai. India

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Published

2023-08-31