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Research Article

Extraction, Characterization, and Comparison of Properties of Cassava Bagasse and Black Seed Fibers

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Pages 14525-14538 | Published online: 06 May 2022

References

  • Abdullah, A. H. D., S. Chalimah, I. Primadona, and M. H. G. Hanantyo. 2018. Physical and chemical properties of corn, cassava, and potato starchs. IOP Conference Series: Earth and Environmental Science. 160 ( 01200310.1088):1315–755. doi:10.1088/1755-1315/160/1/012003.
  • Al-Jassir, M. S. 1992. Chemical composition and microflora of black cumin (Nigella sativa L.) seeds growing in Saudi Arabia. Food Chemistry 45 (4):239–42. doi:10.1016/0308-8146(92)90153-S.
  • Alzorqi, I., S. Sudheer, T. J. Lu, and S. Manickam. 2017. Ultrasonically extracted β-D-glucan from artificially cultivated mushroom, characteristic properties and antioxidant activity. Ultrasonics Sonochemistry 35:531–40. doi:10.1016/j.ultsonch.2016.04.017.
  • Aouada, F. A., M. R. de Moura, W. J. Orts, and L. H. C. Mattoso. 2011. Preparation and characterization of novel micro-and nanocomposite hydrogels containing cellulosic fibrils. Journal of Agricultural and Food Chemistry 59 (17):9433–42. doi:10.1021/jf202347h.
  • Ashori, A., A. Nourbakhsh, and A. K. Tabrizi. 2014. Thermoplastic hybrid composites using bagasse, corn stalk and E-glass fibers: Fabrication and characterization. Polymer-Plastics Technology and Engineering 53 (1):1–8. doi:10.1080/03602559.2013.832854.
  • Ashrafi, A., M. Jokar, and A. Mohammadi Nafchi. 2018. Preparation and characterization of biocomposite film based on chitosan and kombucha tea as active food packaging. International Journal of Biological Macromolecules 108:444–54. doi:10.1016/j.ijbiomac.2017.12.028.
  • Babayan, V. K., D. Koottungal, and G. A. Halaby. 1978. Proximate analysis, fatty acid and amino acid composition of Nigella sativa L. seeds. Journal of Food Science 43 (4):1314–15. doi:10.1111/j.1365-2621.1978.tb15297.x.
  • Balbay, A., Y. Kaya, and O. Sahin. 2012. Drying of black cumin (Nigella sativa) in a microwave assisted drying system and modeling using extreme learning machine. Energy 44 (1):352–57. doi:10.1016/j.energy.2012.06.022.
  • Bertuzzi, M. A., M. Armada, and J. C. Gottifredi. 2003. Thermodynamic analysis of water vapour sorption of edible starch based films. Food Science and Technology International 9 (2):115–21. doi:10.1177/1082013203009002007.
  • Bilbao-Sainz, C., J. Bras, T. Williams, T. Sénechal, and W. Orts. 2011. HPMC reinforced with different cellulose nano-particles. Carbohydrate Polymers 86 (4):1549–57. doi:10.1016/j.carbpol.2011.06.060.
  • Chang, C., and L. Zhang. 2011. Cellulose-based hydrogels: Present status and application prospects. Carbohydrate Polymers 84 (1):40–53. doi:10.1016/j.carbpol.2010.12.023.
  • Chen, H., Y. Yuan, and Q. Li. 2020. Preparation and characterization of corn starch‐based composite films containing corncob cellulose and cassia oil. Starch‐Stärke 72 (5–6):1900209. doi:10.1002/star.201900209.
  • Dang, K. M., and R. Yoksan. 2015. Development of thermoplastic starch blown film by incorporating plasticized chitosan. Carbohydrate Polymers 115:575–81. doi:10.1016/j.carbpol.2014.09.005.
  • Diabor, E., P. Funkenbusch, and E. E. Kaufmann. 2019. Characterization of cassava fiber of different genotypes as a potential reinforcement biomaterial for possible tissue engineering composite scaffold application. Fibers and Polymers 20 (2):217–28. doi:10.1007/s12221-019-8702-9.
  • Edhirej, A., S. M. Sapuan, M. Jawaid, and N. I. Zahari. 2017. Preparation and characterization of cassava bagasse reinforced thermoplastic cassava starch. Fibers and Polymers 18 (1):162–71. doi:10.1007/s12221-017-6251-7.
  • Farias, F. O., A. C. Jasko, T. A. D. Colman, L. A. Pinheiro, E. Schnitzler, A. C. Barana, and I. M. Demiate. 2014. Characterisation of cassava bagasse and composites prepared by blending with low-density polyethylene. Brazilian Archives of Biology and Technology 57 (6):821–30. doi:10.1590/S1516-8913201402506.
  • Fortea-Verdejo, M., E. Bumbaris, C. Burgstaller, A. Bismarck, and K.-Y. Lee. 2017. Plant fibre-reinforced polymers: Where do we stand in terms of tensile properties? International Materials Reviews 62 (8):441–64
  • Fu, S.-Y., X.-Q. Feng, B. Lauke, and Y.-W. Mai. 2008. Effects of particle size, particle/matrix interface adhesion and particle loading on mechanical properties of particulate–polymer composites. Composites Part B: Engineering 39 (6):933–61. doi:10.1016/j.compositesb.2008.01.002.
  • Gaikwad, K. K., J. Y. Lee, and Y. S. Lee. 2016. Development of polyvinyl alcohol and apple pomace bio-composite film with antioxidant properties for active food packaging application. Journal of Food Science and Technology 53 (3):1608–19. doi:10.1007/s13197-015-2104-9.
  • Harussani, M. M., S. M. Sapuan, A. Khalina, R. A. Ilyas, and M. D. Hazrol. 2020. Review on green technology pyrolysis for plastic wastes. Proceedings of the 7th Postgraduate Seminar on Natural Fibre Reinforced Polymer Composites 2020, Universiti Putra Malaysia, Serdang, Selangor, Malaysia. Universiti Putra Malaysia. 50–53.
  • Hazrati, K. Z., S. M. Sapuan, and R. A. Ilyas. 2019. Biobased food packaging using natural fibre: A review. Prosiding Seminar Enau Kebangsaan Bahau, Negeri Sembilan, Malaysia, Universiti Putra Malaysia. 140–142.
  • Hazrati, K. Z., S. M. Sapuan, M. Y. M. Zuhri, and R. Jumaidin. 2021. Extraction and characterization of potential biodegradable materials based on dioscorea hispida tubers. Polymers 13 (4):584. doi:10.3390/polym13040584.
  • Huang, Q., J. Zhao, M. Liu, J. Chen, X. Zhu, T. Wu, J. Tian, Y. Wen, X. Zhang, and Y. Wei. 2018. Preparation of polyethylene polyamine@ tannic acid encapsulated MgAl-layered double hydroxide for the efficient removal of copper (II) ions from aqueous solution. Journal of the Taiwan Institute of Chemical Engineers 82:92–101. doi:10.1016/j.jtice.2017.10.019.
  • Ibrahim, M. I. J., S. M. Sapuan, E. S. Zainudin, and M. Y. M. Zuhri. 2019a. Extraction, chemical composition, and characterization of potential lignocellulosic biomasses and polymers from corn plant parts. BioResources 14 (3):6485–500. doi:10.15376/biores.14.3.6485-6500.
  • Ibrahim, M. I. J., S. M. Sapuan, E. S. Zainudin, and M. Y. M. Zuhri. 2020. Preparation and characterization of cornhusk/sugar palm fiber reinforced Cornstarch-based hybrid composites. Journal of Materials Research and Technology 9 (1):200–11. doi:10.1016/j.jmrt.2019.10.045.
  • Ilyas, R. A.et al . (2020). Thermal, Biodegradability and Water Barrier Properties of Bio-Nanocomposites Based on Plasticised Sugar Palm Starch and Nanofibrillated Celluloses from Sugar Palm Fibres. J Biobased Mat Bioenergy 14 (2):234–248. doi:10.1166/jbmb.2020.1951.
  • Ilyas, R. A., S. M. Sapuan, M. M. Harussani, M. Hakimi, M. Z. M. Haziq, M. S. N. Atikah, M. R. M. Asyraf, M. R. Ishak, M. R. Razman, and N. M. Nurazzi. 2021. Polylactic acid (PLA) biocomposite: Processing, additive manufacturing and advanced applications. Polymers 13 (8):1326. doi:10.3390/polym13081326.
  • Ilyas, R. A., S. M. Sapuan, M. R. Ishak, and E. S. Zainudin. 2017. Effect of delignification on the physical, thermal, chemical, and structural properties of sugar palm fibre. BioResources 12 (4):8734–54. doi:10.15376/biores.12.4.8734-8754.
  • Jawaid, M., and H. P. S. A. Khalil. 2011. Cellulosic/synthetic fibre reinforced polymer hybrid composites: A review. Carbohydrate Polymers 86 (1):1–18. doi:10.1016/j.carbpol.2011.04.043.
  • Jumaidin, R., S. M. Sapuan, M. Jawaid, M. R. Ishak, and J. Sahari. 2017a. Effect of agar on physical properties of thermoplastic starch derived from sugar palm tree. Pertanika Journal of Science and Technology 25 (4):1235–48.
  • Jumaidin, R., S. M. Sapuan, M. Jawaid, M. R. Ishak, and J. Sahari. 2017b. Thermal, mechanical, and physical properties of seaweed/sugar palm fibre reinforced thermoplastic sugar palm Starch/Agar hybrid composites. International Journal of Biological Macromolecules 97 (1):606–15. doi:10.1016/j.ijbiomac.2017.01.079.
  • Kalhori, F., E. Arkan, F. Dabirian, G. Abdi, and P. Moradipour. 2019. Controlled preparation and characterization of Nigella sativa electrospun pad for controlled release. Silicon 11 (2):593–601. doi:10.1007/s12633-018-9931-z.
  • Kizil, R., J. Irudayaraj, and K. Seetharaman. 2002. Characterization of irradiated starches by using FT-Raman and FTIR spectroscopy. Journal of Agricultural and Food Chemistry 50 (14):3912–18. doi:10.1021/jf011652p.
  • Lee, C. H., A. Khalina, N. M. Nurazzi, A. Norli, M. M. Harussani, S. Rafiqah, H. A. Aisyah, and N. Ramli. 2021a. The challenges and future perspective of woven kenaf reinforcement in thermoset polymer composites in Malaysia: A review. Polymers 13 (9):1390. doi:10.3390/polym13091390.
  • Lee, S.-M., S.-H. Lee, and J.-S. Roh. 2021b. Analysis of activation process of carbon black based on structural parameters obtained by XRD analysis. Crystals 11 (2):153. doi:10.3390/cryst11020153.
  • Leite, A. L. M. P., C. D. Zanon, and F. C. Menegalli. 2017. Isolation and characterization of cellulose nanofibers from cassava root bagasse and peelings. Carbohydrate Polymers 157:962–70. doi:10.1016/j.carbpol.2016.10.048.
  • Leonel, M., and M. P. Cereda. 2000. Extração da fécula retida no resíduo fibroso do processo de produção de fécula de mandioca. Food Science and Technology 20 (1):122–27. doi:10.1590/S0101-20612000000100023.
  • Liu, J. G., T. S. Zhao, Z. X. Liang, and R. Chen. 2006. Effect of membrane thickness on the performance and efficiency of passive direct methanol fuel cells. Systems Biology 153 (2):61–67. doi:10.1016/j.jpowsour.2005.03.190.
  • Lomelí-Ramírez, M. G., S. G. Kestur, R. Manríquez-González, S. Iwakiri, G. B. de Muniz, and T. S. Flores-Sahagun. 2014. Bio-composites of cassava starch-green coconut fiber: Part II—Structure and properties. Carbohydrate Polymers 102:576–83. doi:10.1016/j.carbpol.2013.11.020.
  • López-De-Dicastillo, C., J. Gómez-Estaca, R. Catalá, R. Gavara, and P. Hernández-Muñoz. 2012. Active antioxidant packaging films: Development and effect on lipid stability of brined sardines. Food Chemistry 131 (4):1376–84. doi:10.1016/j.foodchem.2011.10.002.
  • Mendes, C., F. Adnet, M. Leite, C. R. G. Furtado, and A. Sousa. 2015. Chemical, physical, mechanical, thermal and morphological characterization of corn husk residue. Cellulose Chemistry and Technology 49 (9–10):727–35.
  • Mohammed, S. J., H. H. H. Amin, S. B. Aziz, A. M. Sha, S. Hassan, J. M. Abdul Aziz, and H. S. Rahman. 2019. Structural characterization, antimicrobial activity, and in vitro cytotoxicity effect of black seed oil. Evidence-Based Complementary and Alternative Medicine 2019:1–9. doi:10.1155/2019/6515671.
  • Mohammed, L., M. N. M. Ansari, G. Pua, M. Jawaid, and M. S. Islam. 2015. A review on natural fiber reinforced polymer composite and its applications. International Journal of Polymer Science 2015:1–15. doi:10.1155/2015/243947.
  • Naskar, A. K., J. K. Keum, and R. G. Boeman. 2016. Polymer matrix nanocomposites for automotive structural components. Nature Nanotechnology 11 (12):1026–30. doi:10.1038/nnano.2016.262.
  • Norizan, M. N., M. H. Moklis, A. H. Alias, A. I. Rushdan, M. N. F. Norrrahim, K. Abdan, and N. Abdullah. 2021. Treatments of natural fibre as reinforcement in polymer composites-short review. Functional Composites and Structures. doi:10.1088/2631-6331/abff36.
  • Nurazzi, N. M., M. M. Harussani, N. D. S. Zulaikha, A. H. Norhana, M. I. Syakir, and A. Norli. 2021. Composites based on conductive polymer with carbon nanotubes in DMMP gas sensors–an overview. Polimery 66 (2):85–97. doi:10.14314/polimery.2021.2.1.
  • Radford, K. C. 1971. The mechanical properties of an epoxy resin with a second phase dispersion. Journal of Materials Science 6 (10):1286–91. doi:10.1007/BF00552042.
  • Radzi, A. M., S. M. Sapuan, M. Jawaid, and M. R. Mansor. 2019. Water absorption, thickness swelling and thermal properties of roselle/sugar palm fibre reinforced thermoplastic polyurethane hybrid composites. Journal of Materials Research and Technology 8 (5):3988–94. doi:10.1016/j.jmrt.2019.07.007.
  • Rao, K. M. M., and K. M. Rao. 2007. Extraction and tensile properties of natural fibers: Vakka, date and bamboo. Composite Structures 77 (3):288–95. doi:10.1016/j.compstruct.2005.07.023.
  • Rathi, G., S. I. Siddiqui, Q. Pham, and V. T. Nam. 2020. Nigella sativa seeds based antibacterial composites: A sustainable technology for water cleansing-A review. Sustainable Chemistry and Pharmacy 18:100332. doi:10.1016/j.scp.2020.100332.
  • Razali, N., M. S. Salit, M. Jawaid, M. R. Ishak, and Y. Lazim. 2015. A study on chemical composition, physical, tensile, morphological, and thermal properties of roselle fibre: Effect of fibre maturity. BioResources 10 (1):1803–24. doi:10.15376/biores.10.1.1803-1824.
  • Rhim, J. W., H. M. Park, and C. S. Ha. 2013. Bio-nanocomposites for food packaging applications. Progress in Polymer Science 38 (10–11):1629–52. doi:10.1016/j.progpolymsci.2013.05.008.
  • Rodriguez-Gonzalez, F. J., B. A. Ramsay, and B. D. Favis. 2003. High performance LDPE/thermoplastic starch blends: A sustainable alternative to pure polyethylene. Polymer 44 (5):1517–26. doi:10.1016/S0032-3861(02)00907-2.
  • Saba, N., M. Paridah, and M. Jawaid. (2015). Mechanical properties of kenaf fibre reinforced polymer composite: A review. Construction and Building Materials 76: 87–96. doi:10.1016/j.conbuildmat.2014.11.043.
  • Serna-Cock, L., and M. A. Guancha-Chalapud. 2017. Natural fibers for hydrogels production and their applications in agriculture. Acta Agronómica 66 (4):495–505. doi:10.15446/acag.v66n4.56875.
  • Silviana, S., and M. C. Dzulkarom. 2019. Synthesis of cassava bagasse starch-based biocomposite reinforced woven bamboo fibre with lime juice as crosslinker and epoxidized waste cooking oil (EWCO) as bioplasticizer. Journal of Physics: Conference Series 1295 (1):12076.
  • Singh, S., N. Singh, N. Isono, and T. Noda. 2010. Relationship of granule size distribution and amylopectin structure with pasting, thermal, and retrogradation properties in wheat starch. Journal of Agricultural and Food Chemistry 58 (2):1180–88. doi:10.1021/jf902753f.
  • Singh, N., J. Singh, L. Kaur, N. S. Sodhi, and B. S. Gill. 2003. Morphological, thermal and rheological properties of starches from different botanical sources. Food Chemistry 81 (2):219–31. doi:10.1016/S0308-8146(02)00416-8.
  • Sirviö, J. A., A. Kolehmainen, H. Liimatainen, J. Niinimäki, and O. E. O. Hormi. 2014. Biocomposite cellulose-alginate films: Promising packaging materials. Food Chemistry 151:343–51. doi:10.1016/j.foodchem.2013.11.037.
  • Suppakul, P., B. Chalernsook, B. Ratisuthawat, S. Prapasitthi, and N. Munchukangwan. 2013. Empirical modeling of moisture sorption characteristics and mechanical and barrier properties of cassava flour film and their relation to plasticizing–antiplasticizing effects. LWT-Food Science and Technology 50 (1):290–97. doi:10.1016/j.lwt.2012.05.013.
  • Teixeira, E. D. M., A. A. S. Curvelo, A. C. Corrêa, J. M. Marconcini, G. M. Glenn, and L. H. C. Mattoso. 2012. Properties of thermoplastic starch from cassava bagasse and cassava starch and their blends with poly (lactic acid). Industrial Crops and Products 37 (1):61–68. doi:10.1016/j.indcrop.2011.11.036.
  • Väisänen, T., O. Das, and L. Tomppo. 2017. A review on new bio-based constituents for natural fiber-polymer composites. Journal of Cleaner Production 149:582–96. doi:10.1016/j.jclepro.2017.02.132.
  • Vega, D., M. A. Villar, M. D. Failla, and E. M. Vallés. 1996. Thermogravimetric analysis of starch-based biodegradable blends. Polymer Bulletin 37 (2):229–35. doi:10.1007/BF00294126.
  • Versino, F., O. V. López, and M. A. García. 2015. Sustainable use of cassava (Manihot esculenta) roots as raw material for biocomposites development. Industrial Crops and Products 65:79–89. doi:10.1016/j.indcrop.2014.11.054.
  • Wicaksono, R., K. Syamsu, I. Yuliasih, M. Nasir, and K. Street. 2013. Cellulose nanofibers from cassava bagasse: Characterization and application on tapioca-film. Cellulose 3 (13):79–87.
  • Zentou, H., N. S. Rosli, C. H. Wen, K. Abdul Azeez, and C. Gomes. 2019. The viability of biofuels in developing countries: Successes, failures, and challenges. Iranian Journal of Chemistry and Chemical Engineering 38 (4):173–182.
  • Zhang, J.-F., and X. Sun. 2004. Mechanical properties of poly (lactic acid)/starch composites compatibilized by maleic anhydride. Biomacromolecules 5 (4):1446–51. doi:10.1021/bm0400022.
  • Zhao, X., J. Chen, F. Chen, X. Wang, Q. Zhu, and Q. Ao. 2013. Surface characterization of corn stalk superfine powder studied by FTIR and XRD. Colloids and Surfaces B: Biointerfaces 104:207–12. doi:10.1016/j.colsurfb.2012.12.003.

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