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Research Article

Synthesis and characterization of Salicornia bigelovii and Salicornia brachiata halophytic plants oil extracted by supercritical CO2 modified with ethanol for biodiesel production via enzymatic transesterification reaction using immobilized Candida antarctica lipase catalyst in tert-butyl alcohol (TBA) solvent

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Article: 1625847 | Received 19 Apr 2019, Accepted 25 May 2019, Published online: 20 Jun 2019

References

  • Adekunle, S. A., Oyekunle, A. O., Obisesan, R. O., Ojo, O. S., & Ojo, S. O. (2016). Effects of degumming on biodiesel properties of some non-conventional seed oils. Energy Reports, 2(2016), 188–20. doi:10.1016/j.egyr.2016.07.001
  • Aktas, D. F., Lee, J. S., Little, B. J., Ray, R. I., Davidova, I. A., Lyles, C. N., & Suflita, J. M. (2010). Anaerobic metabolism of biodiesel and its impact on metal corrosion. Energy Fuels, 24, 2924–2928. doi:10.1021/ef100084j
  • Al Naggar, M. M., Ashour, F. H., Ettouney, R. S., & El Rifai, M. A. (2017). Production of biodiesel from locally available spent vegetable oil. Journal of Renewable Energy and Sustainable Development, 3(2), 189–195. doi:10.21622/resd.2017.03.2.189
  • Alptekin, E., & Canakci, M. (2008). Characterization of the key fuel properties of methyl ester biodiesel-diesel fuel blends. Renewable Energy, 33, 2623–2630. doi:10.1016/j.renene.2008.02.020
  • Al-Rasheed, S. A., Ibrahim, M. M., Maysa, M. A., & El-Gaaly, G. A. (2016). Biodiesel production and antioxidant capability from seeds of Salicornia bigelovii collected from Al-Jubail eastern province, Saudi Arabia. Pakistan Journal of Botany, 48(6), 2527–2533.
  • Al-Zuhair, S. (2007). Production of biodiesel: Possibilities and challenges. Biofuels, Bioproducts and Biorefining, 1(1), 57–66. doi:10.1002/(ISSN)1932-1031
  • Al-Zuhair, S., Ling, F. W., & Jun, L. S. (2007). Proposed kinetic mechanism of the production of biodiesel from palm oil using lipase. Process Biochemistry, 42(6), 951–960. doi:10.1016/j.procbio.2007.03.002
  • American Society for Testing and Materials. (2007). ASTM standard specification for biodiesel fuel (B100): Annual book of ASTM standards. West Conshohocken: ASTM International. Method D6751-07b.
  • Anawe, P. A. L., & Folayan, J. A. (2018a). Data on physico-chemical, performance, combustion and emission characteristics of persea Americana biodiesel yield and its blends on direct injection, compression ignition engines. Data in Brief, 21(2018), 1533–1540. doi:10.1016/j.dib.2018.10.166
  • Anawe, P. A. L., & Folayan, J. A. (2018b). Novel synthetic based drilling fluid through enzymatic Inter-esterification of canola oil. International Journal of Chemical Engineering. Article ID 6418090. Hindawi.
  • Anawe, P. A. L., & Folayan, J. A. (2018c). Data on optimization of production parameters on persea Americana (Avocado) plant oil biodiesel yield and quality. Data in Brief, 20, 855–863. doi:10.1016/j.dib.2018.08.064
  • Anwar, F. B., Anger, M., Nasir, M., & Ismail, S. (2002). Analytical characterization of Salicornia bigelovii seed oil cultivated in pakistan. Journal of Agricultural and Food Chemistry, 50(15), 4210–4214.
  • AOAC. (1990). Official methods of analysis (15TH). Virginia, USA: Author. p. 69–84: 951–979.
  • ASTM. (2009). Standard specification for biodiesel fuel (B100) blend stock for distillate fuels. 1131–1136.
  • Azam, M. M., Waris, A., & Nahar, N. M. (2005). Prospects and potential of fatty acid methyl esters of some non-tradition seed oils for use as biodiesel in India. Biomass and Bioenergy, 29(4), 293–302. doi:10.1016/j.biombioe.2005.05.001
  • Bajpai, D., & Tyagi, V. K. (2006). Biodiesel: Source, production, composition, properties and its benefits. Journal of Oleo Science, 55(10), 487–502. doi:10.5650/jos.55.487
  • Bangboye, A. I., & Hansen, A. C. (2008). Prediction of cetane number of biodiesel fuel from the fatty acid methyl ester (FAME) composition. Int. Agrophysics., 22(1), 21–29.
  • Bello, E. I., Adekanbi, I. I., & Akinbode, F. O. (2015). Production and characterization of coconut (Cocos nucifera) oil and its methyl ester. European Journal of Engineering and Technology, 3(3), 25–35.
  • Bello, E. I., Akinola, A. O., Otu, F., & Owoyemi, J. J. (2013). Fuel and physico-chemical properties of cashew (Anarcardium occidentale). Nut oil,its biodiesel and blends with diesel. British Journal of Applied Science and Technology, 3(4), 1055–1069. doi:10.9734/BJAST/2013/1680
  • Borugadda, V. B., & Goud, V. V. (2014). Thermal,oxidative and low temperature properties of methyl esters prepared from oils of different fatty acids composition: A comparative study. Thermochimica Acta, 577(2014), 33–40. doi:10.1016/j.tca.2013.12.008
  • Caballero, V., Bautista, F. M., Campelo, Campelo, J. M., Luna, D., Marinas, J. M., … Giordano, G. (2009). Sustainable preparation of a novel glycerol-free biofuel by using pig pancreatic lipase: Partial 1,3-regiospecific alcoholysis of sunflower oil. Process Biochemistry, 44(3), 334–342. doi:10.1016/j.procbio.2008.11.015
  • Cao, L. (2005). Immobilised enzymes: Science or art. Current Opinion in Chemical Biology, 9(2), 217–226. doi:10.1016/j.cbpa.2005.02.014
  • Chandravati, V., Saini, A., Bera, M., & Maji, P. K. (2017). Thermo-analytical characterization of biodiesel produced from edible and non-edible oils. Fuel Processing Technology, 167(2017), 395–403.
  • Cherng, Y. L., & Lin, Y.-W. (2012). Fuel characteristics of biodiesel produced from a high acid oil of soyabean soap stock by supercritical-methanol transesterification. Energies, 5(2012), 2370–2380. doi:10.3390/en5072370
  • De Paola, M. G., Ricca, E., Calabr`, O., Curcio, S., & Iorio, G. (2009). Factor analysis of transesterification reaction of waste oil for biodiesel production. Bioresource Technology, 100(21), 5126–5131. doi:10.1016/j.biortech.2009.05.027
  • Deepa, S., Ramesh, K. P., Swarna, V. K., Raghava, R. J., & Bangaru, C. (2014). Studies on the physiological and biochemical characteristics of Salicornia brachiate: Influence of saline stress due to soaking waste water of tannery. Desalination and Water Treatment, 52(31–33), 6022–6029. doi:10.1080/19443994.2013.812987
  • Demirbas, A. (1998). Fuel properties and calculation of higher heating values of vegetable oils. Fuel, 77(9–10), 1117–1120. doi:10.1016/S0016-2361(97)00289-5
  • Demirbas, A. (2007). Importance of biodiesel as transportation fuel. Energy Policy, 35(9), 4661–4670. doi:10.1016/j.enpol.2007.04.003
  • Dossat, V., Combes, D., & Marty, A. (1990). Continuous enzymatic transesterification of high oleic sunflower oil in a packed bed reactor: Influence of the glycerol production. Enzyme Microb. Technol, 25, 194–200. doi:10.1016/S0141-0229(99)00026-5
  • Drapcho, C. M., Nhuan, N. P., & andWalker, T. H. (2008). Biofuels engineering process technology. McGraw-Hill Companies.
  • Dunn, R. O. (1999). Thermal analysis of alternative diesel fuels from vegetable oils. Journal of American Oil Chemists Society, 76(1999), 109–115. doi:10.1007/s11746-999-0056-9
  • Eganathan, P., SR-Subramanian, H. M., Latha, R., & Rao, C. S. (2006). Oil analysis in seeds of Salicornia brachiate. Industrial Crops and Product, 23(2006), 177–179. doi:10.1016/j.indcrop.2005.05.007
  • Encinar, J. M., Gonzalez, J. F., & Rodriguez-Reinares, A. (2007). Ethanolysis of used frying oil biodiesel preparation and characterization. Fuel Processing Technology, 88(5), 513–522. doi:10.1016/j.fuproc.2007.01.002
  • European committee for standardization. (2003). Committee for standardization of automotive fuels-fatty acid FAME for diesel engines requirements and test methods. Brussels: Author. EN 14214.
  • Falasca, S. L., Ulberich, A., & Acevedo, A. (2014). Identification of Argentinian saline drylands suitable for growing Salicornia bigelovii for bioenergy. International Journal of Hydrogen Energy, 39(16), 8682–8689. doi:10.1016/j.ijhydene.2013.12.061
  • Fellows, P. (2000). Food processing technology: Principles and practice. Woodhead Publishing Limited and CRC Press LLC, 2000.
  • Fjerbaek, L., Christensen, K. V., & Norddahl, B. (2009). A review of the current state of biodiesel production using enzymatic transesterification,”. Biotechnology and Bioengineering, 102(5), 1298–1315. doi:10.1002/bit.v102:5
  • Fukuda, H., Kondo, A., & Noda, H. (2001). Biodiesel fuel production by transesterification of oils. Journal of Bioscience and Bioengineering, 92(5), 405–416. doi:10.1016/S1389-1723(01)80288-7
  • Garcia, R. M. (2010). Physiological studies of the halophyte Salicornia bigelovii: A potential food and biofuel crop for integrated aquaculture- agriculture systems. The University of Arizona, 2010.
  • Geddada, M. N., & Pragada, P. M. (2013). Morphological and anatomical features of Salicornia brachiata. Journal of Biological and Chemical Research, 30(2), 887–891.
  • Gentechscientific.com (2018). Gas Chromatography. http://gentechscientific.com/gas chromatography. (accessed 5TH August 2018).
  • Glenn, E. P., Anday, T., Chaturvedi, R., Martinez-Garcia, R., Pearlstein, S., Soliz, D., … Felger, R. S. (2013). Three halophytes for saline-water agriculture: An oilseed, a forage and a grain crop. Environmental and Experimental Botany, 92, 110–121. doi:10.1016/j.envexpbot.2012.05.002
  • Glenn, E. P., & Brown, J. J. (1999). Salt tolerance and crop potential halophytes. Critical Reviews in Plant Sciences, 18(2), 227–255. doi:10.1080/07352689991309207
  • Gog, A., Roman, M., Tosa, M., Paizs, C., & Irimie, F. D. (2012). Biodiesel production using enzymatic transesterification–Current state and perspectives. Renewable Energy, 39(10–16). doi:10.1016/j.renene.2011.08.007
  • Hanifar, T., Al-Zuhair, S., Ali, H., Al-Marzouqi, Y. F., & Mohammed, M. F. (2011). A review of enzymatic transesterification of microalgal oil-based biodiesel using supercritical technology. Enzyme Research, 2011. doi:10.4061/2011/468292
  • Harwood, H. J. (1984). Oleochemicals as a fuel. Mechanical and economic feasibility. Jaocs, 61, 315–324. doi:10.1007/BF02678788
  • Hossain, A. B. M., Boyce, A. N., Salleh, A., & Chandran, S. (2010). Impact of alcohol type, ratio and stirring time on the biodiesel production from waste canola oil. African Journal of Agricultural Research, 5(14), 1851–1859.
  • Kalayasiri, P., Jayashoke, N., & Krisnangkura, K. (1996). Survey of seed oils for use as diesel fuels. Journal of the American Oil Chemists Society, 73(4), 471–474. doi:10.1007/BF02523921
  • Knothe, G. (2005a). Viscosity of biodiesel. Chapter 6.2. In The biodiesel handbook. Champaign, Il, USA: AOCS press.
  • Knothe, G. (2005b). Dependence of biodiesel fuel properties on the structure of fatty acid alkyl esters. Fuel Processing Technology, 86(2005), 1059–1070. doi:10.1016/j.fuproc.2004.11.002
  • Knothe, G., Matheaus, A. C., & Ryan, T. W. (2003). Cetane numbers of branched and straight-chain fatty esters determined in an ignition quality tester. Fuel, 82(8), 971–975. doi:10.1016/S0016-2361(02)00382-4
  • Knothe, G., & Steidley, K., . R. (2005). Kinematic viscosity of biodiesel fuel components and related compounds: Influence of compound structure and comparison to petrodiesel fuel components. Fuel, 84(9), 1059–1065. doi:10.1016/j.fuel.2005.01.016
  • Krisnangkura, K. (1986). A simple method for estimation of cetane index of vegetable oil methyl esters. Journal of the American Oil Chemists Society, 63(4), 552–553. doi:10.1007/BF02645752
  • Kumar, R., Madras, G., & Modak, J. (2004). Enzymatic synthesis of ethyl palmitate in supercritical carbon dioxide. Industrial and Engineering Chemistry Research, 43(7), 1568–1573. doi:10.1021/ie034032h
  • Lee, S. B., Han, K. H., Lee, J. D., & Hong, I. K. (2010). Optimum process and energy density analysis of canola oil biodiesel synthesis. Journal of Industrial and Engineering Chemistry, 16, 1006–1010. doi:10.1016/j.jiec.2010.09.015
  • Llah, E. M., Ssan, M. H., Murui, T., & Ami, E. S. (1994). Detailed studies on seed oil of Salicornia SOS, 7, cultivated at the Egyptian boarder of red sea. Grasas Y Aceites, 45(6), 385–389.
  • Luque, S., Cervero, J. M., & Alvarez, J. R. (2014). Novozym 435-catalyzed synthesis of fatty acid ethyl esters from soybean oil for biodiesel production. Biomass and Bioenergy, 61, 131–137. doi:10.1016/j.biombioe.2013.12.005
  • Ma, F., & Hanna, M. A. (1999). Biodiesel production: A review. Bioresource Technology, 70(1), 1–15. doi:10.1016/S0960-8524(99)00025-5
  • Meher, L. C., Sagar, D. V., & Naik, S. N. (2006). Technical aspects of biodiesel production by transesterification: A review. Renewable and Sustainable Energy Reviews, 10(3), 248–268. doi:10.1016/j.rser.2004.09.002
  • Modi, M. K., Reddy, J. R. C., Rao, B. V. S. K., & Prasad, R. B. N. (2007). Lipase-mediated conversion of vegetable oils into biodiesel using ethyl acetate as acyl acceptor. Bioresource Technology,98, 1260–1264. doi:10.1016/j.biortech.2006.05.006
  • Mohibbe, A., Amtul, W., & Nahar, N. M. (2005). Prospect and potential of fatty acid methyl esters of some non-traditional seeds oil for use as biodiesel in India. Biomass Bioenergy, 29(2005), 293–302. doi:10.1016/j.biombioe.2005.05.001
  • Murugesan, A., Umarani, C., Chinnusamy, T. R., Krishnan, M., & Subramania, R. (2009). Production and analysis of biodiesel from non-edible oils: A review. Renewable Sustainable Energy Reviews, 13, 825–834. doi:10.1016/j.rser.2008.02.003
  • Noorollahi, Y., Sokhansefat, S., Sokhansefat, T., Rahmani, K., & Jalilinaasrabady, S. (2015). Biodiesel resources assessment and evaluation of the production capacity from Salicornia plant in Golestan province, north-east, Iran. International Journal of Renewable Energy Research, 5(3), 847–858.
  • Noureddini, H., Gao, X., & Philkana, R. S. (2005). Immobilized Pseudomonas cepacia lipase for biodiesel fuel production from soybean oil. Bioresource Technology, 96(7), 769–777. doi:10.1016/j.biortech.2004.05.029
  • Park, H. S., Lee, H. J., Shin, M. H., Lee, K. W., Lee, H., Kim, Y. S., … Kim, K. H. (2007). Effects of co-solvents on the definition of green tea of supercritical CO2. Food Chemistry, 105(3), 1011–1017. doi:10.1016/j.foodchem.2007.04.064
  • Perez, A., Casas, A., Fernandez, C. M., Ramos, M. J., & Rodriguez, I. (2010). Winterization of peanut biodiesel to improve the cold flow properties. Bioresource Technology, 101(2010), 7375–7381. doi:10.1016/j.biortech.2010.04.063
  • Rafaat, A. A. (2009). Correlation between the chemical structure of biodiesel and its physical properties. International Journal of Environment Science and Technology, 6(4), 677–694. doi:10.1007/BF03326109
  • Ranganathan, S. V., Narasimhan, S. L., & Muthukumar, K. (2008). An overview of enzymatic production of biodiesel. Bioresource Technology, 99(10), 3975–3981. doi:10.1016/j.biortech.2007.04.060
  • Rashid, U., Anwar, F., Moser, B. R., & Samia, A. (2008). Production of sunflower methyl esters by optimized alkali-catalyzed methanolysis. Biomass Bioenergy, 32(12), 1202–1205. doi:10.1016/j.biombioe.2008.03.001
  • Robles-Medina, A., Gonz´alez-Moreno, P. A., Esteban-Cerd´an, L., & Molina-Grima, E. (2009). Biocatalysis: Towards ever greener biodiesel production. Biotechnology Advances, 27(4), 398–408. doi:10.1016/j.biotechadv.2008.10.008
  • Royon, D., Daz, M., Ellenrieder, G., & Locatelli, S. (2007). Enzymatic production of biodiesel from cotton seed oil using t-butanol as a solvent. Bioresource Technology, 98(2007), 648–653. doi:10.1016/j.biortech.2006.02.021
  • Salles, K., Meneghetti, S. M. P., Ferreira de la, S. W., Meneghetti, M. R., Dos Santos, L. C. F., Da Silva, J. P. V., … Soletti, J. I. (2010). Characterization of Syagrus coronate (Mart) Becc. Oil and properties of methyl esters for use as biodiesel. Ind.Crops Prod, 32(2010), 518–521. doi:10.1016/j.indcrop.2010.06.026
  • Sapkale, G. N., Patil, S. M., Surwase, U. S., & Bhatbhage, P. K. (2010). Supercritical fluid extraction. International Journal of Chemical Science, 8(2), 729–743.
  • Schumacher, L. G., Marshall, W., Krahl, J., Wetherell, W. B., & Grabowski, M. S. (2001). Biodiesel emissions data from series 60 DDC engines,”. Transactions of the American Society of Agricultural Engineers, 44(6), 1465–1468. doi:10.13031/2013.6999
  • Sebastian, J., Muraleedharan, C., & Santhiagu, A. (2016). A comparative study between chemical and enzymatic transesterification of high free fatty acid contained rubber seed oil for biodiesel production. Cogent Engineering.3, 1178370. doi:10.1080/23311916.2016.1178370
  • Shahid, H. (2014). Enhanced oil recovery using supercritical carbondioxide with and without co-solvents. International Journal of Petroleum and Gas Engineering, 2(1), 1–12.
  • Sharma, Y. C., Singh, B., & Upadhyay, S. N. (2008). Advancements in development and characterization of biodiesel: A review. Fuel, 87(12), 2355–2377. doi:10.1016/j.fuel.2008.01.014
  • Shimada, Y., Watanabe, Y., Samukawa, T., et al (1999). Conversion of vegetable oil to biodiesel using immobilized Candida Antarctica lipase. Journal of the American Oil Chemists’ Society, 76, 789–793. doi:10.1007/s11746-999-0067-6
  • Stavarache, C., Vinatoru, M., Nishimura, R., & Maeda, Y. (2005). Fatty acids methyl esters from vegetable oil by means of ultrasonic energy. Ultrasonics Sonochemistry, 12(5), 367–372. doi:10.1016/j.ultsonch.2004.04.001
  • Svendsen, A. (2000). Lipase protein engineering. Biochimica Et Biophysica Acta, 15(43), 223–238. doi:10.1016/S0167-4838(00)00239-9
  • Szczesna, A., . M., Kubiak, A., Antczak, T., & Bielecki, S. (2009). Enzymatic biodiesel synthesis: Key factors affecting efficiency of the process. Renewable Energy, 34(5), 1185–1194. doi:10.1016/j.renene.2008.11.013
  • Tupu, S. C., Jae, Y., Marquis, C., Adesina, A. A., & Rogers, P. L. (2013). Enzymatic conversion of coconut oil for biodiesel production. Fuel Processing Technology, 106, 721–726. doi:10.1016/j.fuproc.2012.10.007
  • Uriate, F. A. (2010). Biofuels from Plant Oils: A book for practitioners and professionals involved in biofuels, to promote a better and more accurate understanding of the nature, production and use of biofuels from plant oils. National Academy of Science and Technology. Government of Japan. Japan ASEAN. Solidarity Fund
  • Vicente, G., Martinez, M., & Aracil, J. (2004). Integrated biodiesel production: A comparism of different homogenous catalyst system. Bioresource Technology, 92, 297–305. doi:10.1016/j.biortech.2003.08.014
  • Zhou, W., Konar, S. K., & Boocock, D. G. B. (2003). Ethyl esters from the single-phase base-catalyzed ethanolysis of vegetable oils. Journal of American Oil Chemist Society, 80(4), 367–371. doi:10.1007/s11746-003-0705-1
  • Zucca, P., & Sanjust, E. (2014). Inorganic materials as supports for covalent enzyme immobilization: Methods and mechanism. Molecules.19, (9), 14139–14194. doi:10.3390/molecules190914139
  • Zuleta, E. C., Rios, L. A., & Benjumea, P. N. (2012). Oxidative stability and cold flow behaviour of palm, sacha-hinchi, Jatropha and castor oil biodiesel blends. Fuel Processing Technology, 102(2012), 96–101. doi:10.1016/j.fuproc.2012.04.018
  • Zzkdinstrument .com (2019). Zhengzhou Keda RE-501 vacuum rotary evaporator. Retrieved from http://zzkdinstrument.com/RE-501 vacuum rotary evaporator