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Research Article

Extraction and Characterization of Inherently Antimicrobial Fibres from Aerial Roots of Banyan Tree

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References

  • Basu, G., A. N. Roy, K. K. Satapathy, S. M. J. Abbas, L. Mishra, and R. Chakraborty. 2012. Potentiality for value-added technical use of Indian sisal. Industrial Crops and Products 36 (1):33–40. doi:10.1016/j.indcrop.2011.08.001.
  • Basu, G., L. Mishra, S. Jose, and A. K. Samanta. 2015. Accelerated retting cum softening of coconut fiber. Industrial Crops and Products 77:66–73. doi:10.1016/j.indcrop.2015.08.012.
  • Bernfeld., P. 1951. Enzymes of starch degradation and synthesis. Advances in Enzymology and Related Areas of Molecular Biology 12:379–428.
  • Bessadok, A., S. Marais, F. Gouanve, L. Colasse, I. Zimmerlin, I. Zimmerlin, and M. Metayer. 2007. Effect of chemical treatments of Alfa (Stipa tenacissima) fibres on water-sorption properties. Compo. Sci. Technol 67 (3–4):685–97. doi:10.1016/j.compscitech.2006.04.013.
  • Cheng, C., R. Guo, J. Lan, and S. Jiang. 2017. Extraction of Lotus Fibres from Lotus Stems under Microwave Irradiation. Royal Society Open Science 4 (9):1–10. doi:10.1098/rsos.170747.
  • Collier, J.R. and Collier, J.B., 1998. Process for obtaining cellulosic fiber bundles at least 2.5 cm long from plant stalk rind. U.S. Patent No. 5718802
  • Dam Van, J. E. G., and H. L. Bos. 2004. Of Fibre Crops in Industrial Applications, 1–33. Hintergrundpapier Zu: Van Dam, JEGno. Bos.
  • Datta, E. S. R., and M. M. Hossain. 2016. Different approaches to modify the properties of jute fiber: A review. The International Journal of Engineering and Science 5:24–27.
  • Devi, S., C. Gupta, M. S. Parmar, S. L. Jat, and N. Sisodia. 2017. Eco-Fibers : Product Of Agri-Bio-Waste Recycling. Journal of Humanities and Social Science. 22 (9):51–58.
  • Ding, T. Y., Hii, S. L., and Ong, L. G. A. (2012). “Comparison of pretreatment strategies for conversion of coconut husk fiber to fermentable sugars,” BioResources 7(2), 1540–1547
  • Dinh, V., N., . H. Thi Tran, N. D. Bui, C. Duc Vu, and H. Viet Nguyen. 2017. Lignin and Cellulose Extraction from Vietnam’s Rice Straw Using Ultrasound-Assisted Alkaline Treatment Method. International Journal of Polymer Science 2017 (2): 1-8 DOI: 10.1155/2017/1063695.
  • Focher, B. et al, 1998. Regenerated and graft copolymer fibers from stem-exploded wheat straw: characterization and properties. J. Appl. Poly. Sci. 67, 961–974
  • Fong Sim, S., M. Mohamed, N. Aida Lu Mohd Irwan Lu, N. P. Safitri Sarman, and S. Nor Sihariddh Samsudin. 2012. Computational FTIR with PCA. BioResources 7 (4):5367–80.
  • Franck, R. R. 2005. Bast and Other Plant Fibres. Vols. 322-327. 228–42. Cambridge England: Woodhead Publishing in textiles. 331-339
  • Geethamma, V. G., L. A. Pothen, B. Rhao, N. R. Neelakantan, and S. Thomas. 2004. Tensile stress relaxation of short-coir-fiber-reinforced natural rubber composites. Journal of Applied Polymer Science 94 (1):96–104. doi:10.1002/app.20746.
  • Ghali, A. E., I. B. Marzoug, M. H. V. Baouab, and M. S. Roudesli. 2012. Separation and characterization of new cellulosic fibres from the Juncus acutus plant. BioResources 7 (2):2002–18. doi:10.15376/biores.7.2.2002-2018.
  • Hazarika, D., N. Gogoi, S. Jose, R. Das, and G. Basu. 2017. Exploration of future prospects of Indian pineapple leaf, an agro waste for textile application. Journal of Cleaner Production 141:580–86. doi:10.1016/j.jclepro.2016.09.092.
  • Henriksson, G. et al., 1997. Identification and retting efficiencies of fungi isolated from dew-retted flax in the United States and Europe. Appl. Environ. Microb. 63, 3950–3956
  • Jain, A., D. Rastogi, B. Chanana, M. S. Parmar, and A. Dhama. 2017b. Extraction Of Cornhusk Fibres For Textile Usages. IOSR Journal of Polymer and Textile Engineering 04 (1):29–34. doi:10.9790/019X-04012934.
  • Jose, S., R. Das., I. Mustafa., S. Karmakar., and G. Basu. 2019a. Potentiality of Indian pineapple leaf fiber for apparels. Journal of Natural Fibers 16 (4):536–44. doi:10.1080/15440478.2018.1428844.
  • Jose, S., R. Salim, and L. Ammayappan. 2016. An Overview on Production, Properties, and Value Addition of Pineapple Leaf Fibers (PALF). Journal of Natural Fibers 13 (3):362–73. doi:10.1080/15440478.2015.1029194.
  • Kaushik, N. K., A. Bagavan, A. A. Rahuman, D. Mohanakrishnan, C. Kamaraj, G. Elango, A. A. Zahir, and D. Sahal. 2013. Antiplasmodial Potential of Selected Medicinal Plants from Eastern Ghats of South India. Experimental Parasitology 134 (1):26–32. doi:10.1016/j.exppara.2013.01.021.
  • Kirk, Ole, Ture Damhus, Torben Vedel Borchert, Claus Crone Fuglsang, Hans Sejr Olsen, Tomas Tage Hansen, Henrik Lund, Hans Erik Schiff, and Lone Kierstein Nielsen. “Enzyme Applications, Industrial”. Kirk-Othmer Encyclopedia of Chemical Technology 10(2004): 248–317. doi:10.1002/0471238961.0914042114090512.a01.pub2. https://patents.google.com/patent/US20110091941A1/en
  • Lewin, M., and E. M. Pearce. 1985. Fiber chemistry of Handbook of fiber science and technology, Vol. 4. New York: Marcel Dekker, Inc.
  • Liu, W., M. Misra, P. Askeland, L. T. Drzal, and A. K. Mohanty. 2005. ‘Green’composites from soy based plastic and pineapple leaf fiber: Fabrication and properties evaluation. Polymer 46 (8):2710–21. doi:10.1016/j.polymer.2005.01.027.
  • Majumdar, P. and Chanda, S., 2001 Chemical profile of some lignocellulosic crop residues. Indian J. Agric. Biochem. 14(1 & 2), 29–33
  • Mohanty, A. K., M. Misra, and G. Hinrichsen. 2000. Biofibres biodegradable polymers and biocomposites: An overview. Macromolecular Materials and Engineering 276–277:1–24. doi:10.1002/(SICI)1439-2054(20000301) 276:13.0.CO;2-W
  • Mukherjee, J.J., 1972. Long vegetable fibers. Textile Progress 4(4), 8–9
  • Pandey, R., S. Jose., G. Basu, and M. K. Sinha. 2019. Novel methods of degumming and bleaching of Indian flax variety Tiara. Journal of Natural Fibers 1–11. doi:10.1080/15440478.2019.1687067.
  • Paridah, M. T., and Khalina, A. (2009). “Effects of soda retting on the tensile strength of kenaf (Hibiscus cannabinus L.) bast fibres,” Project Report Kenaf EPU, 21 pp
  • Pathak, K. V., and H. Keharia. 2013. Characterization of fungal antagonistic bacilli isolated from aerial roots of banyan (Ficus benghalensis) using intact-cell MALDI-TOF mass spectrometry (ICMS). Journal of Applied Microbiology 114 (5):1300–10. doi:10.1111/jam.12161.
  • Ramarad, S. 2009. Preparation and properties of Kenaf bast fiber filled (plasticized) poly(lactic acid) composites. M.Sc. Thesis, Universiti Sains Malaysia.
  • Reddy, N., and Y. Yang. 2009. Extraction and Characterization of Natural Cellulose Fibers from Common Milkweed Stems. Polymer Engineering and Science 49 (11):2212–17. doi:10.1002/pen.21469.
  • Shi, J., and J. Li. 2012. Metabolites and chemical group changes in the wood forming tissue of Pinus koraiensis under inclined condition. BioResources 7 (3):3463–75.
  • Singh, G., S. Jose, D. Kaur, and B. Soun. 2020. Extraction and Characterization of Corn Leaf Fiber. Journal of Natural Fibers 1–11. doi:10.1080/15440478.2020.1787914.
  • Song, K. H., and S. K. Obendorf. 2006. Chemical and Biological Retting of Kenaf Fibers. Textile Research Journal 76 (10):751–56. doi:10.1177/0040517506070520.
  • Summerscales, J., N. P. Dissanayake, A. S. Virk, and W. Hall. 2010. A review of bast fibres and their composites. Part 1–Fibres as reinforcements. Composites. Part A, Applied Science and Manufacturing 41 (10):1329–35. doi:10.1016/j.compositesa.2010.06.001.
  • Thakur, MK, Rana, AK & Thakur, VK 2014, Lignocellulosic Polymer Composites: A Brief Overview. in Lignocellulosic Polymer Composites: Processing, Characterization, and Properties. vol. 9781118773574, Wiley Blackwell, pp. 1-15. https://doi.org/10.1002/9781118773949.ch1
  • Verma, V. K., N. Sehgal, and O. Prakash. 2015. Characterization and Screening of Bioactive Compounds in the Extract Prepared from Aerial Roots of Ficus Benghalensis. International Journal of Pharmaceutical Sciences and Research 6 (12):5056–69.
  • Yan, Y. 2016. Developments in fibers for technical nonwovens. Advances in Technical Nonwovens 19–96. doi:10.1016/b978-0-08-100575-0.00002-4.
  • Yu, T., J. Ren, S. Li, H. Yuan, and Y. Li. 2010. Effect of fiber surface-treatments on the properties of poly(lactic acid)/ramie composites. Composites. Part A, Applied Science and Manufacturing 41 (4):499–505. doi:10.1016/j.compositesa.2009.12.006.

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