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Research Article

Cellulosic Microfiber Extraction from Ecofriendly Bahunia Racemosa and Its Characterization

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Pages 14477-14489 | Published online: 26 Apr 2022

References

  • Abhilash, K., J. R. A. Sunanda Biswas, N. Sindhu, M. R. Sanjay, and M. R. Sanjay. 2020. Characterization of microfiber isolated fromHibiscus sabdariffa var.altissimafiber by steam explosion. Journal of Natural Fibers 17 (2):189–98. doi:10.1080/15440478.2018.1477085.
  • Abraham, E., B. Deepa, L. A. Pothan, M. Jacob, S. Thomas, U. Cvelbar, and R. Anandjiwala. 2011. Extraction of nanocellulose fibrils from lignocellulosic fibres: A novel approach. Carbohydrate Polymers 86 (4):1468–75. doi:10.1016/j.carbpol.2011.06.034.
  • Anish, K., M. A. Abdullah, M. Jawaid, N. Saba, and I. Inamuddin. 2020. Effect of cellulose nano fibers and nano clays on the mechanical, morphological, thermal and dynamic mechanical performance of kenaf/epoxy composites. Carbohydrate Polymers 239 (December 2019):116248. doi:10.1016/j.carbpol.2020.116248.
  • Arib, R. M. N., S. M. Sapuan, M. M. H. M. Ahmad, M. T. Paridah, and H. M. D. Khairul Zaman. 2006. Mechanical properties of pineapple leaf fibre reinforced polypropylene composites. Materials and Design 27 (5):391–96. doi:10.1016/j.matdes.2004.11.009.
  • Avolio, R., I. Bonadies, D. Capitani, M. E. Errico, G. Gentile, and M. Avella. 2012. A multitechnique approach to assess the effect of ball milling on cellulose. Carbohydrate Polymers 87 (1):265–73. doi:10.1016/j.carbpol.2011.07.047.
  • Cara, C., E. Ruiz, I. Ballesteros, M. J. Negro, and E. Castro. 2006. Enhanced enzymatic hydrolysis of olive tree wood by steam explosion and alkaline peroxide delignification. Process Biochemistry 41 (2):423–29. doi:10.1016/j.procbio.2005.07.007.
  • Chakraborty, A., M. Sain, and M. Kortschot. 2006. “cellulose microfibers as reinforcing agents for structural materials.” ACS Symposium Series American Chemical Society: Washington, DC 938: 169–86. doi:10.1021/bk-2006-0938.ch012.
  • Chan, C. H., C. Hua Chia, S. Zakaria, I. Ahmad, and A. Dufresne. 2013. Production and characterisation of cellulose and nano- crystalline cellulose from kenaf core wood. BioResources 8 (1):785–94. doi:10.15376/biores.8.1.785-794.
  • Cherian, B. M., A. Lopes Leão, S. Ferreira De Souza, L. Maria Manzine Costa, M. K. Gabriel Molina De Olyveira, E. R. Nagarajan, S. Thomas, and S. Thomas. 2011. Cellulose nanocomposites with nanofibres isolated from pineapple leaf fibers for medical applications. Carbohydrate Polymers 86 (4):1790–98. doi:10.1016/j.carbpol.2011.07.009.
  • Cherian, B. M., A. Lopes Leão, S. Sivoney Ferreira de, S. Thomas, L. A. Pothan, and M. Kottaisamy. 2010. Isolation of nanocellulose from pineapple leaf fibres by steam explosion. Carbohydrate Polymers 81 (3):720–25. doi:10.1016/j.carbpol.2010.03.046.
  • de Rodriguez, G., N. Lis, W. Thielemans, and A. Dufresne. 2006. Sisal cellulose whiskers reinforced polyvinyl acetate nanocomposites. Cellulose 13 (3):261–70. doi:10.1007/s10570-005-9039-7.
  • Deepanjan, B., L. T. Germinario, and W. T. Winter. 2008. Isolation, preparation and characterization of cellulose microfibers obtained from bagasse. Carbohydrate Polymers 73 (3):371–77. doi:10.1016/j.carbpol.2007.12.005.
  • Fan, M., D. Dai, and B. Huang. 2012. Fourier transform infrared spectroscopy for natural fibres. In Fourier Transform - Materials Analysis, S. Mohammed Salih. ed., Croatia: Intech 45–68 . doi:10.5772/35482.
  • Fatah, I. Y. A., H. P. S. Abdul Khalil, M. Sohrab Hossain, A. A. Aziz, Y. Davoudpour, R. Dungani, and A. Bhat. 2014. Exploration of a chemo-mechanical technique for the isolation of nanofibrillated cellulosic fiber from oil palm empty fruit bunch as a reinforcing agent in composites materials. Polymers 6 (10):2611–24. doi:10.3390/polym6102611.
  • Fiore, V., T. Scalici, and A. Valenza. 2014. Characterization of a new natural fiber from arundo donax l. as potential reinforcement of polymer composites. Carbohydrate Polymers 106 (1):77–83. doi:10.1016/j.carbpol.2014.02.016.
  • Gao, A., H. Chen, J. Tang, K. Xie, and A. Hou. 2020. Efficient extraction of cellulose nanocrystals from waste calotropis gigantea fiber by SO42-/TiO2 nano-solid superacid catalyst combined with ball milling exfoliation. Industrial Crops and Products 152 (April):112524. doi:10.1016/j.indcrop.2020.112524.
  • Gindl-Altmutter, W., J. Keckes, J. Plackner, F. Liebner, K. Englund, and M. Pierre Laborie. 2012. All-cellulose composites prepared from flax and lyocell fibres compared to epoxy-matrix composites. Composites Science and Technology 72 (11):1304–09. doi:10.1016/j.compscitech.2012.05.011.
  • Jawaid, M., O. Y. Alothman, M. T. Paridah, A. Khalil, and S. Arabia. 2014. Effect of Oil palm and jute fiber treatment on mechanical performance of epoxy hybrid composites. International Journal of Polymer Analysis and Characterization 19 (1):62–69. doi:10.1080/1023666X.2014.858429.
  • Jonoobi, M., A. Khazaeian, P. Md Tahir, S. Saiful Azry, and K. Oksman. 2011. Characteristics of cellulose nanofibers isolated from rubberwood and empty fruit bunches of oil palm using chemo-mechanical process. Cellulose 18 (4):1085–95. doi:10.1007/s10570-011-9546-7.
  • Julie Chandra, C. S., N. George, and K. N. Sunil. 2016. Isolation and characterization of cellulose nanofibrils from arecanut husk fibre. Carbohydrate Polymers 142:158–66. doi:10.1016/j.carbpol.2016.01.015.
  • Karakoti, A., J. Ronald Aseer, K. D. Priya, and M. Rajesh. 2020. Micro cellulose grewia optiva fiber-reinforced polymer composites: relationship between structural and mechanical properties. Journal of Natural Fibers 1–12. doi:10.1080/15440478.2020.1800549.
  • Kim, S. J., J. Bok Moon, G. Hyun Kim, and H. Chang Sik. 2008. Mechanical properties of polypropylene/natural fiber composites: comparison of wood fiber and cotton fiber. Polymer Testing 27 (7):801–06. doi:10.1016/j.polymertesting.2008.06.002.
  • Mandal, A., and D. Chakrabarty. 2011. Isolation of nanocellulose from waste Sugarcane Bagasse (SCB) and its Characterization. Carbohydrate Polymers 86 (3):1291–99. doi:10.1016/j.carbpol.2011.06.030.
  • Manikandan, V., S. G. Ponnambalam, S. Thomas, and R. Velmurugan. 2004. Mechanical properties of short and uni-directional palmyra fibre reinforced composite. International Journal of Plastics Technology 8 (1):205–16.
  • Mengjiao, Y., R. Yang, L. Huang, X. Cao, F. Yang, and D. Liu. 2012. Preparation and characterization of bamboo nanocrystalline cellulose. BioResources 7 (2):1802–12. doi:10.15376/biores.7.2.1802-1812.
  • Mittal, V., R. Saini, and S. Sinha. 2016. Natural fiber-mediated epoxy composites - A review. Composites Part B: Engineering 99:425–35. doi:10.1016/j.compositesb.2016.06.051.
  • Morán, J. I., V. A. Alvarez, V. P. Cyras, and A. Vázquez. 2008. Extraction of CELLULOSE AND PREPARATION OF NANOCELLULOSE FROM SISAL FIbers. Cellulose 15 (1):149–59. doi:10.1007/s10570-007-9145-9.
  • Mwaikambo, L. Y., and M. P. Ansell. 2006. Mechanical properties of alkali treated plant fibres and their potential as reinforcement materials. i. hemp fibres. Journal of Materials Science 41 (8):2483–96. doi:10.1007/s10853-006-5098-x.
  • Nishiyama, Y. 2009. Structure and properties of the cellulose microfibril. Journal of Wood Science 55 (4):241–49. doi:10.1007/s10086-009-1029-1.
  • Ouajai, S., and R. A. Shanks. 2005. Composition, structure and thermal degradation of hemp cellulose after chemical treatments. Polymer Degradation and Stability 89 (2):327–35. doi:10.1016/j.polymdegradstab.2005.01.016.
  • Qiuqin Lin, Y., Y. Huang, and W. W. Yu. 2021. Effects of extraction methods on morphology, structure and properties of bamboo cellulose. Industrial Crops and Products 169:113640. doi:10.1016/j.indcrop.2021.113640.
  • Samir, M. A. S. A., F. Alloin, M. Paillet, and A. Dufresne. 2004. Tangling effect in fibrillated cellulose reinforced nanocomposites. Macromolecules 37 (11):4313–16. doi:10.1021/ma035939u.
  • Sankhla, S., H. Hossain Sardar, and S. Neogi. 2021. Greener extraction of highly crystalline and thermally stable cellulose micro-fibers from sugarcane bagasse for cellulose nano-fibrils preparation. Carbohydrate Polymers 251 (July 2020):117030. doi:10.1016/j.carbpol.2020.117030.
  • Sarikaya, E., H. Çallioğlu, and H. Demirel. 2019. Production of epoxy composites reinforced by different natural fibers and their mechanical properties. Composites Part B: Engineering 167:461–66. doi:10.1016/j.compositesb.2019.03.020.
  • Silviya, E., U. Gopalakrishnapanicker, S. Varghese, and J. T. Guthrie. 2010. Cellulose microfibres produced from banana plant wastes: Isolation and characterization. Carbohydrate Polymers 80 (3):852–59. doi:10.1016/j.carbpol.2009.12.043.
  • Srinivas, K., A. Lakshumu Naidu, and M. V. A. Raju Bahubalendruni. 2017. A review on chemical and mechanical properties of natural fiber reinforced polymer composites. International Journal of Performability Engineering 13 (2):189–200. doi:10.23940/ijpe.17.02.p8.189200.
  • Wood, B. M., S. R. Coles, S. Maggs, J. Meredith, and K. Kirwan. 2011. Use of lignin as a compatibiliser in hemp/epoxy composites. Composites Science and Technology 71 (16):1804–10. doi:10.1016/j.compscitech.2011.06.005.
  • Xiao, B., X. F. Sun, and R. Cang Sun. 2001. Chemical, structural, and thermal characterizations of alkali-soluble lignins and hemicelluloses, and cellulose from maize stems, rye straw, and rice straw. Polymer Degradation and Stability 74 (2):307–19. doi:10.1016/S0141-3910(01)00163-X.
  • Xue, L., L. G. Tabil, and S. Panigrahi. 2007. Chemical treatments of natural fiber for use in natural fiber-reinforced composites: a review. Journal of Polymers and the Environment 15 (1):25–33. doi:10.1007/s10924-006-0042-3.
  • Yang, H. S., H. Joong Kim, J. Son, H. Jun Park, B. Jae Lee, and T. Sung Hwang. 2004. Rice-husk flour filled polypropylene composites; mechanical and morphological study. Composite Structures 63 (3–4):305–12. doi:10.1016/S0263-8223(03)00179-X.
  • Zhang, Y., L. Yan, M. Hao, and Y. Tao. 2013. Tensile and interfacial properties of unidirectional flax/glass fiber reinforced hybrid composites. Composites Science and Technology 88:172–77. doi:10.1016/j.compscitech.2013.08.037.

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