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References

  1. Balat, M. (2007). Global bio-fuel processing and production trends. Energy Explor. Exploit., 25, 195–218.10.1260/014459807782009204
  2. Ballesteros, I., Negro, M. J., Oliva, J. M., Cabanas, A., Manzanares, P., Ballesteros, M. (2006). Ethanol production from steam-explosion pretreated Wheat Straw. Appl. Biochem. Biotechnol.,496, 129–132.10.1007/978-1-59745-268-7_41
  3. Bhat, M. K., Bhat, S., (1997). Cellulose degrading enzymes and their potential industrial applications. Biotechnol. Adv., 15, 583–620.10.1016/S0734-9750(97)00006-2
  4. Calinescu, I., Chipurici, P., Trifan, A., Bădoiu, C. (2012). Immobilisation of Saccharomyces cerevisiae for the production of bioethanol. UPB Sci. Bull., 74, 33–40.
  5. Dale, B. E., Anderson, J. E., Brown, R. C., Csonka, S., Dale, V. H., Herwick, G., Jackson, R. D., Jordan, N., Kaffka, S., Kline, K. L., Lynd, L. R., Malmstrom, C., Ong, R. G., Richard, T. L., Taylor, C., Wang, M. Q. (2014). Take a closer look: Biofuels can support environmental, economic and social goals. Environ Sci. Technol.,48 (13), 7200–7203.10.1021/es5025433
  6. Escobar, L. M. A., Alvarez, U. S., Penuela, M., (2012). Continuous production of ethanol in packed bed-bioreactors with immobilized yeast cells on lignocellulosic waste. Dyna,174, 107–113.
  7. Govindaswamy, S., Vane, L. M. (2007). Kinetics of growth and ethanol production on different carbon substrates using genetically engineered xylose-fermenting yeast. Bioresource Technol., 98, 677–85.10.1016/j.biortech.2006.02.012
  8. Grad, P. (2006). Biofuelling Brazil: An overview of the bioethanol success story in Brazil. Refocus,7, 56–59.10.1016/S1471-0846(06)70576-5
  9. Hendriks, A., Zeeman, G. (2009). Pretreatments to enhance the digestibility of lignocellulosic biomass. Biores. Technol., 100, 10–18.10.1016/j.biortech.2008.05.02718599291
  10. Juhász, T., Szengyel, Z., Roczey, K., Siika-Aho, M., Viikari, L. (2005). Characterization of cellulases and hemicellulases produced by Trichoderma reesei on various carbon sources. Process Biochem., 40, 3519–3525.10.1016/j.procbio.2005.03.057
  11. Karimi K., Shafiei M., Kumar R. (2013). Progress in physical and chemical pretreatment of lignocellulosic biomass. In: Gupta, V. K., Tuohy, M. G. (eds.). Biofuel Technologies. Springer, Berlin, pp. 53–96.10.1007/978-3-642-34519-7_3
  12. Kerr, R. A. (1998). The next oil crisis looms large and perhaps close. Science, 281, 1128–1131.10.1126/science.281.5380.1128
  13. Kim, S., Dale, B. E. (2004). Global potential bioethanol production from wasted crops and crop residues. Biomass Bioenergy, 26, 361–375.10.1016/j.biombioe.2003.08.002
  14. Ladisch, M. R., Dyck, K. (1979). Dehydration of ethanol: New approach gives positive energy balance. Science, 205 (4409), 898–900.
  15. Linoj Kumar, N. V., Dhavala, P., Goswami, A., Maithel, S. (2006). Liquid biofuels in South Asia: Resources and technologies. Asian Biotechnol. Develop. Rev., 8, 31–49.
  16. Malca, J., Freire, F. (2006). Renewability and life-cycle energy efficiency of bioethanol and bio-ethyl tertiary butyl ether (bioETBE): Assessing the implications of allocation. Energy, 31, 3362–3380.10.1016/j.energy.2006.03.013
  17. Mosier, N., Wyman, C., Dale, B., Elander, R., Lee, Y. Y., Holtzapple, M., Ladish, M. (2005). Features of promising technologies for pretreatment of lignocellulosic biomass. Biores. Technol.,96, 673–686.10.1016/j.biortech.2004.06.025
  18. Neelakandan, T., Usharani, G. (2009). Optimisation and production of bioethanol from Cashew apple juice usingi yeast cells by Saccharomyces cerevisiae. Amer. Eurasian J. Sci. Res., 4 (2), 85–88.
  19. de Oliveria, M. E. D., Vaughan, B. E., Rykiel, Jr., E. J. (2005). Ethanol as fuel: Energy, carbon dioxide balances, and ecological footprint. BioScience, 5, 593–602.10.1641/0006-3568(2005)055[0593:EAFECD]2.0.CO;2
  20. Ortiz, R., Sayre, K. D., Govaerts, B., Gupta, R., Subbarao, G. V., Ban, T., Hodson, D., Dixon, J. M., Ivan Ortiz-Monasterio, J., Reynolds, M. (2008). Climate change: Can wheat beat the heat? Agricult. Ecosyst. Environ.,126, 46–58.10.1016/j.agee.2008.01.019
  21. Rapoport, A., Vedernikov, N., Kruma, I., Puke, M., Borovikova, D., Rozenfelde, L., Khroustalyova, G., Matyuskova, N. (2014). Waste-less bioethanol and other valuable substances production from hardwood. WIT Transact. Eng. Sci., 88, 311–317.10.2495/FEEM130371
  22. Shafiei, M., Kumar, R., Karimi, K. (2015). Pretreatment of lignocellulosic biomass. Springer International. In: Karimi, K. (Ed.). Lignocellulose-Based Bioproducts. Springer International Publishing, Switzerland, pp. 85–154.10.1007/978-3-319-14033-9_3
  23. Taherzadeh, M. J., Niklasson, C. (2004). Ethanol from lignocellulosic materials: Pretreatment, acid and enzymatic hydrolyses and fermentation. In: Saha, B. C., Hayashi, K. (eds.). Lignocellulose Biodegradation. American Chemical Society, Washington, DC, pp. 49–68.10.1021/bk-2004-0889.ch003
  24. Taherzadeh, M. J., Karimi, K. (2007). Enzyme based hydrolysis processes for ethanol from lignocellulosic materiāls: A review. BioResources, 2 (4), 707–738.10.15376/biores.2.4.707-738
  25. Taherzadeh, M. J., Karimi, K. (2008). Pretreatment of lignocellulosic wastes to improve ethanol and biogas production: A review. Int. J. Mol. Sci., 9 (9), 1621–1651.10.3390/ijms9091621
  26. Van Dyk, J. S., Pletschke, B. I. (2012). A review of lignocellulose bioconversion using enzymatic hydrolysis and synergistic cooperation between enzymes: Factors affecting enzymes, conversion and synergy. Biotechnol. Adv.,30, 1458–1480.
  27. Vedernikovs, N. (2008). Method for furfural and bioethanol common production. Latvian patent Nr. 13676 (giving out 20.07.2008).
  28. Wyman, C. E., Dale, B. E., Elander, R. T., Holtzapple, M., Ladisch, M. R., Lee, Y. Y. (2005). Coordinated development of leading biomass pretreatment technologies. Biores. Technol.,96 (18), 1959–1966.10.1016/j.biortech.2005.01.010
  29. Wheals, A. E., Bassoc, L. C., Alves, D. M. G., Amorim, H. V. (2009). Fuel ethanol after 25 years. Trends Biotechnol., 17, 482–487.10.1016/S0167-7799(99)01384-0
DOI: https://doi.org/10.1515/prolas-2017-0046 | Journal eISSN: 2255-890X | Journal ISSN: 1407-009X
Language: English
Page range: 275 - 279
Submitted on: Aug 27, 2015
Accepted on: Jul 26, 2017
Published on: Sep 9, 2017
Published by: Latvian Academy of Sciences
In partnership with: Paradigm Publishing Services
Publication frequency: 6 times per year

© 2017 Linda Rozenfelde, Māris Puķe, Irēna Krūma, Ieva Poppele, Nataļja Matjuškova, Nikolajs Vederņikovs, Alexander Rapoport, published by Latvian Academy of Sciences
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.