[1]
Athijayamani A, Sekar S. Mechanical properties of randomly oriented Calotropis Gigante fiber reinforced phenol formaldehyde biocomposites. J Adv Chem 2017; 13(11): 6043-50.
[2]
Mini KM. In: Swater, UK Biofiber composites in building and construction. Advances in Bio Based Fiber 2022; pp. 335-65.
[4]
Sanjay MR, Madhu P, Jyotishkumar P, Suchart S, Sergey G, Eds. Advances in bio based fiber: Moving towards a green society The textile Institute Book Series. Elsevier 2021.
[5]
Ahmadzadeh A, Zakaria S. Effect of filler and aging on the mechanical properties of phenolated oil palm empty fruit bunch base composites. Sains Malays 2008; 37(4): 383-7.
[9]
Chang BP. A comprehensive review of renewable and sustainable biosourced carbon through pyrolysis in biocomposites uses: Current development and future opportunity. Renewable Sustain Energy Rev 2021; 152: 111666.
[11]
Suhaily SS. Bamboo based biocomposites material, design and applications. In:Materials Science - Advanced Topics. Intech Publication 2013; pp. 489-517.
[12]
Sjostrom E. Wood Chemistry, fundamentals and applications. Bark 1993; pp. 109-13.
[13]
Priyadarshini M, Biswal T, Dash S. Sustainable biocomposites it’s manufacturing process and application. Egypt J Chem 2019; 62(4): 1151-66.
[16]
Poljansek I, Krajnc M. Characterization of phenol formaldehyde prepolymer resins by in line FT-IR Spectroscopy. Acta Chim Slov 2005; 52(3): 238-44.
[26]
Maleque MA, Atiqah A, Talib RJ, Zahurin H. New natural fiber reinforced aluminium composites for automotive brake pad. Int J Mech Mater Eng 2012; 7: 166-70.
[39]
Pilato L. Phenolic resins: 100 Years and still going strong. React Funct Polym 2013; 73(2): 270-7.
[42]
Joseph H. Polymer nano composites: Processing, characterization and application. New York: Megraw Hill 2006.
[43]
Pilato L. Phenolic resins: A Century of progress. (1st ed.). Springer, USA 2010; pp. 1-55.
[46]
Bongarde US, Shinde VD. Review on natural fiber reinforcement polymer composites. Int J Innov Sci Eng Technol 2014; 3(2): 431-6.
[47]
Pandey JK, Nagarjuna V, Mohanty AK, Misra M. Commercial potential and competitiveness of natural fiber composites. In:Biocomposites. Woodhead publishing 2015; pp. 1-15.
[48]
Adhitya PH, Kishore KS, Prasad DV. Characterization of natural fiber reinforced composites. Int J Eng Appl Sci 2017; 4(6): 257446.
[49]
Begum K, Islam M. Natural fibers as a substitute to synthetic fiber in polymer composites: A review. Res J Eng Sci 2013; 2278: 9472.
[52]
Rials T, Wolcott MP. Physical and mechanical properties of agro-based fibers. In: Rowell RM, Young RA, Rowell JK, Eds. Paper and Composites from Agro-Based Resources. Boca Raton, FL: CRC Lewis Publishers 1996; pp. 63-82.
[53]
Pandey SN. Fifty years of research in jute 1939-1989, Jute technology research laboratories. Calcutta, India: Hooghly Printing Co. Ltd. 1990.
[54]
Rowell RM, Stout HP. Jute and kenaf. In: Lewin M, Ed. Handbook of fiber chemistry. (3rd Ed.). Bocaraton, FL: Taylor and Francis 2007; Vol. 7: pp. 405-52.
[55]
Fiber Atlas. Identification of papermaking fibers. Berlin, Germany: Springer 1993.
[56]
Kirby RH. Vegetable fbers. In: London: Leonard Hill Books Ltd. 1963.
[57]
Batra SK. Other long vegetable fibers: Abaca, banana, sisal, henequen, flax, ramie, hemp, sunn, and coir. In: Lewin M, Ed. Handbook of Fiber Chemistry. (3rd ed..). Bocaraton, FL: Taylor and Francis 2007; 8: pp. 453-520.
[58]
Chand N, Hashmi SAR. Effect of plant age on structure and strength of sisal fiber. Metals Mater Processes 1993; 5(1): 51.
[59]
Esau K. Anatomy of Seed Plants, Soil Science. (2nd ed..). 1960; 90: p. 149.
[60]
Saba N, Tahir P, Jawaid M, Abdan K, Ibrahim N. Potential Utilization of Kenaf Biomass in Different Applications. In: Khalid , jawaid , Othman , Eds. Agricultural biomass based potential materials Springer-Verlag, Switzerland.
[61]
Biagiotti J, Pugila D, Kenny JM. A review on natural fiber based composites.part 1: Structure, processing and properties of vegetable fibers. J Nat 2004; 1(2): 37-68.
[62]
Rowell RM, Han JS. Changes in kenaf properties and chemistry as a function of growing time Kenaf properties, processing and products Mississippi State. MS: Mississippi State University, Ag & Bio Engineering 1999; pp. 33-41.
[65]
Saxena M, Pappu A, Hague R, Sharma A. Sisal fiber based polymer composites and their applications. In: Cellulose Fibers: Bio and Nano-Polymer Composites. Berlin, Heidelberg: Springer 2011; pp. 589-659.
[66]
Sustainable Cotton Production. The Textile Institute Book Series. Elsevier 2017; pp. 21-67.
[68]
Rajula ST, Ram B, Venkatasubramanian V, Karpagam C, Puthira PD. Cane agronomy-tillage,crop geometry,plant systems,weed management,irrigation and intercroping. Scientific Sugarcane Cultivation 2014; pp. 22-44.
[69]
Migita N. Chemical properties of bamboo. BULL. Tokyo univ. Forests 1947; 35: 139.
[70]
Higuchi T, Kimura N. Differences of chemical properties of lignins of vascular bundles and of parenchyma cells of bamboo. Mokuzai Gakkaishi 1966; 12: 173.
[71]
Li Xiaobo. Physical,chemical and mechanical properties of bamboo and it’s utilization potential for fiberboard manufacturing. Masters thesis, LSU Louisiana State University 2004; pp. 866.
[72]
Panshin AJ, de Zeeuw C. Structure, identification, uses and properties of the commercial woods of the United States and Canada. In: Textbook of wood technology. 1970; Vol. 1: p. 705.
[78]
Kumar S. Fabrication and analysis of thermocol sandwiched between bamboo fiber-reinforced phenol formaldehyde composite laminates. Int J Res Adv Dev 2018; 01: 130-4.
[82]
Maya MG, George SC, Sreekala MS, Jose T. Mechanical properties of sisal fiber reinforced phenol formaldehyde eco friendly composites. Renew Resour 2017; 8(1): 28-42.
[84]
Asim M, Jawaid M, Abdan K, Nasir M. Effects of alkali treatments on physical and mechanical strength of pineapple leaf fibers. IOP Mater Sci Engin 2018; 290(1): 12030.
[89]
Loganathan TM, Burhan I, Abdullah SK, et al. Physical, Mechanical, thermal, properties of bio-phenolic based composites. Phenolic Polymer Based Composite Mater 2021; 169-90.
[90]
Barath KN, Sanjay MR, Jawaid M. Effect of stacking sequence on properties of coconut leaf sheath/jute/E-glass reinforced Phenol formaldehyde hybrid composites. J Ind Text 2018; 49(1): 152808371876992.
[91]
Naresh Kumar JS, Kumar GS, Kumar N, Kaseya K. Mechanical and thermal properties of sodium hydroxide treated sisal natural fiber reinforced polymer composites: Barium sulphate used as filler. Mat Today: Proc 2021; 45(6): 5575-8.
[93]
Azim M, Paridah MT, Saba N, et al. Thermal, physical properties and flammability of silane treated Kenaf/Pineapple leaf fibers phenolic hybrid composites 2018; 202: 1330-8.
[96]
Gupta RK. Dielectric properties of bio-fiber polymer composites in advances in bio-based fiber 2022; 159-91.
[97]
Shanbhag P, Narayanan BN. Coir composites based electronics for microwave charging of electric vehicles. Mater Today Proc 2020; 24(2): 1.
[101]
Singh Tej, Pruncu CI, Gangil B, Singh GV. Comparative performance assessment of pineapple fibers based friction composites. J Mater Res Techol 2020; 9(2): 1491-9.
[104]
Barry G, Rabe , Eds. Greenhouse Governance: Addressing Climate Change in America. Brookings Institution Press, Washington, DC 2010; pp. 1-383.
[111]
Ayadi R, Hanana M, Mzid R, Hamrouni L, Khouja ML. Salhi Hanachi. Hibiscus Cannabis’s L.-kenaf: a review paper. J Nat Fibers 2017; 14(4): 466-84.
[112]
Chandramohan D, Marimuthu K. A review on natural fiber. Int J Appl Sci- Res Rev 2011; 8(2): 194-206.
[113]
Ashik K P. A review on mechanical properties of natural fiber reinforced hybrid polymer composites. J Mineral Mater character Eng 2015; 3(05): 420.
[115]
Silva G, Kim S, Aguilar R, Nakamatsu J. Natural fibers as reinforcement additives for geopolymer -A review of potential ecofriendly applications to the construction industry. Sustainable M echnol 2020; 23: e00132.
[116]
Kong Ing. Properties of bio based fibers Advances in bio based fiber moving towards a green society The Textile Institute Book Series. Woodhead Publishing 2022; pp. 33-64.