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Alkaline Pre-Treatment and Enzymatic Hydrolysis of Waste Papers to Fermentable Sugar

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Waste paper is known to be the major component of organic solid waste. In this research, waste paper was used as a feedstock for the production of fermentable sugar with the aid of two (2) microorganisms. The waste papers used included newspaper, office paper and foolscap paper. Enzymatic hydrolysis was carried out on the waste papers after the alkaline treatment using Aspergillus niger and Pseudomonas aeruginosa at different temperatures of 25°C, 37°C and 42°C. The highest yield was obtained from the foolscap paper, which produced reducing sugar at a maximum concentration of 486.66 mg/L after two weeks using Pseudomonas aeruginosa at 37°C. On the other hand, hydrolysing using Aspergillus niger, produced reducing sugar at a maximum concentration of 365 mg/L at an optimum temperature of 25°C with office paper.
Rocznik
Strony
211--217
Opis fizyczny
Bibliogr. 19 poz., rys.
Twórcy
  • Chemical Engineering Department, Covenant University, P.M.B 1023, Canaan Land, Ota, Ogun State, Nigeria
  • Chemical Engineering Department, Covenant University, P.M.B 1023, Canaan Land, Ota, Ogun State, Nigeria
  • Department of Physics, Covenant University, P.M.B 1023, Canaan Land, Ota, Ogun State, Nigeria
autor
  • Department of Food Science and Technology, Federal University of Technology, Akure, Ondo-State, Nigeria
  • Department of Food Science and Technology, Federal University of Technology, Akure, Ondo-State, Nigeria
Bibliografia
  • 1. Chandel A., Chan E.S, Rudravaram R, Narasu M.L., Ravindra L.R., Venkateswar R., Pogaku R., 2007. Economics and environmental impact of bioethanol production technologies: an appraisal. Biotechnology and Molecular Biology Review, 2, 14-32.
  • 2. Dutta R. Fundamentals of biochemical engineering. India: Springer, 2008.
  • 3. Göttsching L., Pakarinen H., Yhdistysc S.P., 2000. Recycled Fiber and Deinking. Technical Association of the Pulp and Paper Industry Finland: Fapet Oy. Science:649.
  • 4. Guerfali M., Saidi A., Gargouri A., Belghith H., 2015. Enhanced enzymatic hydrolysis of waste paper for ethanol production using separate saccharification and fermentation. Tunisha: PubMed.
  • 5. Henning J., Jan B.K., Claus F., 2007. Enzymatic conversion of lignocellulose into fermentable sugars: challenges and opportunities. Biofuels, Bioproducts, Biorefinig, 1(2), 119-134.
  • 6. Hui C., Richard A., Venditti H., Jameel O., Sunkyu P., 2012. Enzymatic Hydrolysis of Recovered Office Printing Paper with Low Enzyme Dosages to Produce Fermentable Sugars. Appl. Biochem. Biotechnology, 166, 1121-1136,
  • 7. Jiang L., Zhang A., Zhao Z., He F., Li H., Wu N., 2016. The comparison of obtaining fermentable sugars from cellulose enzymatic hydrolysis and fast pyrolysis. Bioresources Technology, 200, 8-13.
  • 8. Karima A., Mayo A.W., 2016. Challenges and prospects of private sector participaton in solid waste management in Dar es Salaam, Tanzania. Habitat Interenational, 53, 195-205.
  • 9. Kassim E.A., El-Shahed A.S., 1986. Enzymatic and chemical hydrolysis of certain cellulosic materials. Agricultural Wastes, 17(3), 229-233.
  • 10. Kerr R., 2007. Global Warming is Changing the world. Science, 188-190.
  • 11. Khim H., Chu X.F., 2013.x Enzymatic conversion of newspaper and office paper to fermentable sugars – Process Safety and Environmental Protection, 91, 23-130.
  • 12. Meizah K., Obiri-Danso K., Kadar Z., Fi-Baffoe B., Mensah M.Y., 2015. Municipal solid waste characterization and quantification as a measure towards effective waste management in Ghana. Waste Management, 15-27
  • 13. Modupe E.O., Prof. Abiodun J.O., Prof. Adesola A.A., 2016. The Effect of Different Starter Cultures on the Protein Content in Fermented African Locust Bean (Parkia Biglobosa) Seeds. International Journal of Engineering Research & Technology, 5(4), 249-255.
  • 14. Mokatse K.M.P., Mhlanga H.S., Wyk van J.P.H., 2016. Relative saccharification and initial degradation rates of different waste paper materials by cellulase from Trichoderma viride. Journal of Applied. Bioscience, 105, 10183-10190.
  • 15. Ojewumi M.E., Omoleye J.A., Ajayi A.A., 2016. Optimum fermentation temperature for the protein yield of parkia biglobosa seeds (Iyere), in: Procedding of the 3rd International confernece on African Development Issues (CUICAD), pp. 548-587. Ota, Ogun State, Nigeria.
  • 16. Salam M.A., Paritush C.P., Ariful I., Maksudur R.K., Mohammad R.U., Islam M.A., 2013. Conversion of Cellulosic waste into fermentable sugar: Process optimization. Journal of Chemical Engineering IEB, 28(1), 27-31.
  • 17. Wani K.A., Rao R., 2013. Bioconversion of garden waste, kitchen waste and cow dung into value – added products using earthworm Eisenia fetida. Saudi Journal of Biological Sciences, 149-154.
  • 18. Wayman M., Chen S., Doan K., 1992. Bioconversion of waste paper to ethanol. Process Biochemical, 27(4), 239-245.
  • 19. Khim Hoong ChuSearch for articles by this author-Wyk J.V., Mogale M., Moroka K., 1999. Bioconversion of waste paper materials to sugars: an application illustrating the environmental benefit of enzymes. Biochemical Education, 7, 227-228.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2018).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-c1be8d82-13d1-45ff-a33c-7e7dc5351a38
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