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Research Article

Structural characteristics of lignin extracted from Jordanian olive cake using different fractionation conditions

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Pages 3831-3842 | Received 01 Feb 2019, Accepted 23 Jun 2019, Published online: 24 Sep 2019

References

  • Al-Hamamre, Z. 2015. Potential of utilizing olive cake oil for biodiesel manufacturing. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 37 (23):2609–15. doi:10.1080/15567036.2012.724758.
  • Ansanay, Y. O. 2015. Sulfonic acid solid catalytic pretreatment and hydrolysis of biomass. Ph.D. thesis, North Carolina State University, Raleigh, North Carolina. http://www.lib.ncsu.edu/resolver/1840.16/10755
  • ASTM: E1721-01. 2009. Standard test method for determination of acid-insoluble residue in biomass. West Conshohocken, PA: ASTM International.
  • Brlek, T., N. Voća, T. Krička, J. Lević, Đ. Vukmirović, and R. Čolović. 2012. Quality of pelleted olive cake for energy generation. Agriculturae Conspectus Scientificus 77 (1):31–35.
  • Chandel, A. K., F. A. Antunes, V. Anjos, M. J. Bell, L. N. Rodrigues, I. Polikarpov, … S. S. Da Silva. 2014. Multi-scale structural and chemical analysis of sugarcane bagasse in the process of sequential acid–Base pretreatment and ethanol production by Scheffersomyces shehatae and Saccharomyces cerevisiae. Biotechnology for Biofuels 7 (1):63. doi:10.1186/1754-6834-7-63.
  • Dessbesell, L., C. Xu, R. Pulkki, M. Leitch, and N. Mahmood. 2016. Forest biomass supply chain optimization for a biorefinery aiming to produce high-value bio-based materials and chemicals from lignin and forestry residues: A review of literature. Canadian Journal of Forest Research 47 (3):277–88. doi:10.1139/cjfr-2016-0336.
  • Dilling, P. 1991. U.S. Patent No. 5,049,661. Washington, DC: U.S. Patent and Trademark Office.
  • DIN EN 14774-2. 2010. E: Solid biofuels - Determination of moisture content - Oven dry method - Part 2: Total moisture - Simplified method. Deutsches Institut fur Normung E.V. (DIN), Berlin/Germany.
  • Fernandez-Bolanos, J., B. Felizon, A. Heredia, R. Guillen, and A. Jimenez. 1999. Characterization of the lignin obtained by alkaline delignification and of the cellulose residue from steam-exploded olive stones. Bioresource Technology 68 (2):121–32. doi:10.1016/S0960-8524(98)00134-5.
  • Hamed, O. A., Y. Foad, E. M. Hamed, and N. Al-Hajj. 2012. Cellulose powder from olive industry solid waste. BioResources 7 (3):4190–201.
  • Hindi, S. S., A. A. Bakhashwain, and A. El-Feel. 2010. Physico-chemical characterization of some Saudi lignocellulosic natural resources and their suitability for fiber production. Journal of King Abdulaziz University 21 (2):45.
  • Hussain, M. A., M. E. Huq, S. M. Rahman, and Z. Ahmed. 2002. Estimation of lignin in jute by titration method. Pakistan Journal of Biological Sciences: PJBS 5:521–22. doi:10.3923/pjbs.2002.521.522.
  • Karaman, İ. 2008. Prediction of extractives and lignin contents of Anatolian black pine (Pinus nigra Arnold. var pallasiana) and Turkish pine (Pnus brutia Ten.) trees using infrared spectroscopy and multivariate calibration. Master’s thesis, İzmir Institute of Technology.
  • Karimi, K., and M. J. Taherzadeh. 2016. A critical review of analytical methods in pretreatment of lignocelluloses: Composition, imaging, and crystallinity. Bioresource Technology 200:1008–18. doi:10.1016/j.biortech.2015.11.022.
  • Katušèak, S., M. Polovka, M. Vrska, R. Tino, and M. Jablonsky. 2006. The effect of paper degradation on uncertainty of determination of initial lignin content. ePreservation 3:69–72.
  • Liang, F., Y. Song, C. Huang, J. Zhang, and B. Chen. 2013. Preparation and performance evaluation of a lignin-based solid acid from acid hydrolysis lignin. Catalysis Communications 40:93–97. doi:10.1016/j.catcom.2013.06.005.
  • Mainka, H., L. Hilfert, S. Busse, F. Edelmann, E. Haak, and A. S. Herrmann. 2015. Characterization of the major reactions during conversion of lignin to carbon fiber. Journal of Materials Research and Technology 4 (4):377–91. doi:10.1016/j.jmrt.2015.04.005.
  • Matos, M., M. F. Barreiro, and A. Gandini. 2010. Olive stone as a renewable source of biopolyols. Industrial Crops and Products 32 (1):7–12. doi:10.1016/j.indcrop.2010.02.010.
  • Misson, M., R. Haron, M. F. A. Kamaroddin, and N. A. S. Amin. 2009. Pretreatment of empty palm fruit bunch for production of chemicals via catalytic pyrolysis. Bioresource Technology 100 (11):2867–73. doi:10.1016/j.biortech.2008.12.060.
  • Ouaini, R., N. Estephan, H. Chébib, D. N. Rutledge, S. Medawar, R. Daoud, and N. Ouaini. 2010. Chemical composition of olive cakes resulting from various mills in Lebanon. Agrochimica 54 (6):321–30.
  • Park, S., J. O. Baker, M. E. Himmel, P. A. Parilla, and D. K. Johnson. 2010. Cellulose crystallinity index: Measurement techniques and their impact on interpreting cellulase performance. Biotechnology for Biofuels 3 (1):10. doi:10.1186/1754-6834-3-20.
  • Paula, L. E. D. R., P. F. Trugilho, A. Napoli, and M. L. Bianchi. 2011. Characterization of residues from plant biomass for use in energy generation. Cerne 17 (2):237–46. doi:10.1590/S0104-77602011000200012.
  • Ross, K., and G. Mazza. 2010. Characteristics of lignin from flax shives as affected by extraction conditions. International Journal of Molecular Sciences 11 (10):4035–50. doi:10.3390/ijms11104035.
  • Sluiter, A., B. Hames, D. Hyman, C. Payne, R. Ruiz, C. Scarlata, and J. Wolfe 2008. Determination of extractives in biomass. NREL Technical Report No. NREL/TP-510-42619, 1-12, National Renewable Energy Laboratory, Golden, CO.
  • Tappi, T. 2007. T211 om-07 standard: Ash in wood, pulp, paper, paperboard combustion at 550 °C. TAPPI test methods. TAPPI Press: Georgia, USA.
  • Uzuner, S., R. R. S. Shivappa, and D. Cekmecelioglu. 2016. Bioconversion of alkali pretreated hazelnut shells to fermentable sugars for generation of high value products. Waste and Biomass Valorization 8 (2):407–416.
  • Ververis, C., K. Georghiou, D. Danielidis, D. G. Hatzinikolaou, P. Santas, R. Santas, and V. Corleti. 2007. Cellulose, hemicelluloses, lignin and ash content of some organic materials and their suitability for use as paper pulp supplements. Bioresource Technology 98 (2):296–301. doi:10.1016/j.biortech.2006.01.007.
  • Wang, Y., S. Sun, F. Li, X. Cao, and R. Sun. 2018. Production of vanillin from lignin: The relationship between β-O-4 linkages and vanillin yield. Industrial Crops and Products 116:116–21. doi:10.1016/j.indcrop.2018.02.043.
  • Watkins, D., M. Nuruddin, M. Hosur, A. Tcherbi-Narteh, and S. Jeelani. 2015. Extraction and characterization of lignin from different biomass resources. Journal of Materials Research and Technology 4 (1):26–32. doi:10.1016/j.jmrt.2014.10.009.
  • Welker, C. M., V. K. Balasubramanian, C. Petti, K. M. Rai, S. DeBolt, and V. Mendu. 2015. Engineering plant biomass lignin content and composition for biofuels and bioproducts. Energies 8 (8):7654–76. doi:10.3390/en8087654.
  • Wörmeyer, K., T. Ingram, B. Saake, G. Brunner, and I. Smirnova. 2011. Comparison of different pretreatment methods for lignocellulosic materials. Part II: Influence of pretreatment on the properties of rye straw lignin. Bioresource Technology 102 (5):4157–64. doi:10.1016/j.biortech.2010.11.063.
  • Zhou, X. F., and X. J. Lu. 2014. Structural characterization of kraft lignin for its green utilization. Wood Research-Slovakia 59 (4):583–91.

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