In claim of developing ecologically-friendly and low cost polymeric materials, some polymer scientists and engineers have focused on improving the properties of polymer composites with natural fibers. One typical example of these natural fibers currently used as reinforcements in low load-bearing polymer composites is bovine fiber which is traditionally a waste from slaughterhouse. However, nature has designed natural fibers with anisotropic properties which may not augur well for the development of polymer composites with guaranteed field-proven reliability. Nonetheless, unlike vegetal fibers, most animal fibers can be alternatively exploited for keratinous applications. In the present study, the tensile properties, crude protein contents and variations in elemental distribution of hair fibers obtained from three breeds of bovine found in Nigeria were investigated. The hair fibers were characterized by ultimate testing machine, proximate analysis and scanning electron microscopy with energy dispersive X-ray spectroscopy. Superlative Young’s modulus and tensile strength among the fibers were found to be 0.98989 GPa and 0.56158 MPa, respectively. The determined crude protein contents of the fibers ranged between 35% and 40%. Also, single hair fibers from each bovine breed showed significant variations in elemental distribution along their longitudinal sections which translates to anisotropic chemical and mechanical properties. However, the mean spectral values of the principal elements that constitute amino acids in the fibers are in the same range with that of human hair fibers with a successful record of keratinous applications.
Thomas, J.L. (2009) Why Are Natural Fibers Failing to Deliver on Composite Performance? 17th International Conference on Composite Materials, Edinburgh, 27-31 July 2009.
Rowell, R.M., Sanadi, A.R., Caulfield, D.F. and Jacobson, R.E. (1997) Utilization of Natural Fibers in Plastics Composites: Problems and Opportunities. Lignocellulosic-Plastic Composite, 13, 23-51.
Abilash, N. and Sivapragash, M. (2013) Environmental Benefits of Ecofriendly Natural Fiber reinforced Polymeric Composite Materials. International Journal of Application or Innovation in Engineering and Management, 2, 54-56.
Pickering, K.L., Efendy, M.A. and Le T.M. (2016) A Review of Recent Developments in Natural Fiber Composites and their Mechanical Performance. Composites Part A: Applied Science and Manufacturing, 83, 98-112. https://doi.org/10.1016/j.compositesa.2015.08.038
Sathishkumar, T.P., Navaneethkrishnan, P., Shankar, S., Rajasekar, R. and Rajini, N. (2013) Characterization of Natural Fiber and Composites: A Review. Journal of Reinforced Plastics and Composites, 32, 1457-1476. https://doi.org/10.1177/0731684413495322
Mohammed, L., Ansari, M.N.M., Pua, G., Jawaid, M. and Islam, M.S. (2015) A Review on Natural Fiber Reinforced Polymer Composite and its Applications. International Journal of Polymer Science, 2015, 1-15. https://doi.org/10.1155/2015/243947
Ashby, M.F. (2010) Materials Selection in Mechanical Design. 4th Edition, Butterworth Heinemann, New York.
Sapuan, S.M., Kho, J.Y., Zainudin, E.S. and Hambali, A. (2011) Materials Selection for Natural Fiber Reinforced Polymer Composites Using Analytical Hierarchy Process. Indian Journal of Engineering and Materials Sciences, 18, 255-267.
Ljunberg, L.Y. (2007) Materials Selection and Design for Development of Sustainable Products. Materials & Design, 28, 466-479.
Reich, S., ElSabbagh, A. and Steuernagel, L. (2008) Improvement of Fiber-Matrix Adhesion of Natural Fibers by Chemical Treatment. Macromolecular Symposia, 262, 170-181. https://doi.org/10.1002/masy.200850217
Kabir, M.M., Wang, H., Lau, K.T. and Cardona, F. (2012) Chemical Treatments on Plant-Based Natural Fiber Reinforced Polymer Composites: An Overview. Composites Part B: Engineering, 43, 2883-2892. https://doi.org/10.1016/j.compositesb.2012.04.053
Mohanty, S. and Nayak, S.K. (2006) Interfacial, Dynamic Mechanical, and Thermal Fiber Reinforced Behavior of MAPE Treated Fiber Reinforced HDPE Composites. Journal of Applied Polymer Science, 102, 3306-3315. https://doi.org/10.1002/app.24799
Zahari, W.Z., Badri, R.N., Ardyananta, H., Kurniawan, D. and Nor, F.M. (2015) Mechanical Properties and Water Absorption Behavior of Polypropylene/Ijuk Fiber Composite by Using Silane Treatment. Procedia Manufacturing, 2, 573-578. https://doi.org/10.1016/j.promfg.2015.07.099
Monteiro, S.N., Lopez, F.P.D., Ferreira, A.S. and Nascimento, D.C.O. (2009) Natural Fiber Polymer Matrix Composites: Cheaper, Tougher, and Environmentally Friendly. The Journal of the Minerals, Metals & Materials Society, 61, 17-22. https://doi.org/10.1007/s11837-009-0004-z
Thirmizir, M.A., Ishak, Z.M., Taib, R.M., Sudin, R. and Leong, Y.W. (2011) Mechanical, Water Absorption and Dimensional Stability Studies of Kenaf Bast Fiber-Filled Poly (Butylene Succinate) Composites. Polymer-Plastics Technology and Engineering, 50, 339-348. https://doi.org/10.1080/03602559.2010.531871
Tajvidi, M. and Takemura, A. (2010) Recycled Natural Fiber Polypropylene Composites: Water Absorption/Desorption Kinetics and Dimensional Stability. Journal of Polymers and the Environment, 18, 500-509. https://doi.org/10.1007/s10924-010-0215-y
Shubhra, Q.T., Alam, A.K., Gafur, M.A., Shamsuddin, S.M., Khan, M.A., Saha, M., Sah, D., Quaiyyum, M.A., Khan, J.A. and Ashaduzzaman, M. (2010) Chararcterization of Plant and Animal Based Natural Fibers Reinforced Polypropylene Composites and Their Comparative Study. Fibers and Polymers, 11, 725-731. https://doi.org/10.1007/s12221-010-0725-1
Gonçalves, S. and Esteves, J.L. (2007) Behavior of Wool Fibers Reinforced Composites Materials. 4th International Materials Symposium, Porto, 1-4 April 2007.
Zhan, M., Wool, R.P. and Xiao, J.Q. (2011) Electrical Properties of Chicken Feather Fiber Reinforced Epoxy Composites. Composites Part A: Applied Science and Manufacturing, 42, 229-293. https://doi.org/10.1016/j.compositesa.2010.11.007
Santulli, C., Sarasini, F., Tirillò, J., Valente, T., Valente, M., Caruso, A.P., Infantino, M., Nisini, E. and Minak, G. (2013) Mechanical Behavior of Jute Cloth/Wool Felts Hybrid Laminates. Materials & Design, 50, 309-321. https://doi.org/10.1016/j.matdes.2013.02.079
Oladele, I.O., Olajide, J.L., Agbabiaka, O.G. and Akinwumi, O.O. (2015) Tensile Properties and Fractographic Analysis of Low Density Polyethylene Composites reinforced with Chemically Modified Keratin-Based Biofibers. Journal of Minerals and Materials Characterization and Engineering, 3, 344-352. https://doi.org/10.4236/jmmce.2015.34037
Ho, M.P., Wang, H., Lee, J.H., Ho, C.K., Lau, K.T., Leng, J. and Hui, D. (2012) Critical Factors on Manufacturing Processes of Natural Fiber Composites. Composites Part B: Engineering, 48, 3549-3562. https://doi.org/10.1016/j.compositesb.2011.10.001
Velasco, M.V., Dias, T.C., Freitas, A.Z., Jùnior, N.D., Pinto, C.A., Kaneko, T.M. and Baby, A.R. (2009) Hair Fiber Characteristics and Methods to Evaluate Hair Physical and Mechanical Properties. Brazilian Journal of Pharmaceutical Sciences, 45, 153-162. https://doi.org/10.1590/S1984-82502009000100019
Jayathilakan, K., Sultana, K., Radhakrishna, K. and Bawa, A.S. (2012) Utilization of Byproducts and Waste Materials from Meat, Poultry and Fish Processing Industries: A Review. Journal of Food Science and Technology, 49, 278-293. https://doi.org/10.1007/s13197-011-0290-7
Frank-Whittle, I.H. and Insam, H. (2013) Treatment Alternatives of Slaughterhouse Wastes, and Their Effect on the Inactivation of Different Pathogens: A Review. Critical Reviews in Microbiology, 39, 139-151. https://doi.org/10.3109/1040841X.2012.694410
Sharma, S. and Gupta, A. (2016) Sustainable Management of Keratin Waste Biomass: Applications and Future Perspectives. Brazilian Archives of Biology and Technology, 59, e16150684. https://doi.org/10.1590/1678-4324-2016150684
Zoccola, M., Aluigi, A. and Tonin, C. (2009) Characterization of Keratin Biomass from Butchery and Wool Industry Wastes. Journal of Molecular Structure, 938, 35-40. https://doi.org/10.1016/j.molstruc.2009.08.036
Rouse, J.G. and Van Dyke, M.E. (2010) A Review of Keratin-Based Biomaterials for Biomedical Applications. Materials, 3, 999-1014. https://doi.org/10.3390/ma3020999
Vasconcelos, A. and Cavaco-Paulo, A. (2013) The Use of Keratin in Biomedical Applications. Current Drug Targets, 14, 612-619. https://doi.org/10.2174/1389450111314050010
Barba, C., Méndez, S., Roddick-Lanzilotta, A., Kelly, R., Parra, J.L. and Coderch, L. (2008) Cosmetic Effectiveness of Topically Applied Hydrolysed Keratin Peptides and Lipids Derived from Wool. Skin Research and Technology, 14, 243-248. https://doi.org/10.1111/j.1600-0846.2007.00280.x
Karthikeyan, R., Balaji, S. and Sehgal, P.K. (2007) Industrial Applications of Keratins: A Review. Journal of Scientific and Industrial Research, 66, 710-715.
Adetunji, C.O., Makanjuola, O.R., Arowora, K.A., Afolayan, S.S. and Adetunji, B.O. (2012) Production and Application of Keratin-Based Organic Fertilizer from Microbially Hydrolyzed Feathers to Cowpea (Vigna unguiculata). International Journal of Scientific and Engineering and Research, 3, 1-9.
Ayutthaya, S.I., Tanpichai, S. and Wootthikanokkhan, J. (2015) Keratin Extracted from Chicken Feather Waste: Extraction, Preparation, and Structural Characterization of the Keratin and Keratin/Biopolymer Films and Electrospuns. Journal of Polymers and the Environment, 23, 506-516. https://doi.org/10.1007/s10924-015-0725-8
Zhan, M. and Wool, R.P. (2013) Thermal Expansivity of Chicken Feather Fiber reinforced Epoxy Composites. Journal of Applied Polymer Science, 128, 997-1003. https://doi.org/10.1002/app.38142
Yin, X.C., Li, F.Y., He, Y.F., Wang, Y. and Wang, R.M. (2013) Study on Effective Extraction of Chicken Feather Keratins and Their Films for Controlling Drug Release. Biomaterials Science, 1, 528-536. https://doi.org/10.1039/c3bm00158j
Wang, K., Li, R., Ma, J.H., Jian, Y.K. and Che, J.N. (2016) Extracting Keratin from Wool by Using L-Cysteine. Green Chemistry, 18, 476-481. https://doi.org/10.1039/C5GC01254F
Lee, H., Noh, K., Lee, S.C., Kwon, I.K., Han, D.W., Lee, I.S. and Hwang, Y.S. (2014) Human Hair Keratin and Its-Based Biomaterials for Biomedical Applications. Tissue Engineering and Regenerative Medicine, 11, 255-265. https://doi.org/10.1007/s13770-014-0029-4
Hu, W., Ton-That, M.T., Perrin-Sarazin, F. and Denault, J. (2010) An Improved Method for Single Fiber Tensile Test for Natural Fibers. Polymer Engineering and Science, 50, 819-825. https://doi.org/10.1002/pen.21593
Bos, H.L., Van Den Oever, M.J. and Peters, O.C. (2002) Tensile and Compressive Properties of Flax Fibers for Natural Fiber Reinforced Composites. Journal f Materials Science, 37, 1683-1692. https://doi.org/10.1023/A:1014925621252
Peponi, L., Biagiotti, J., Torre, L., Kenny, J.M. and Mondragon, I. (2008) Statistical Analysis of the Mechanical Properties of Natural Fibers and Their Composite Materials. I. Natural Fibers. Polymer Composites, 29, 313-320. https://doi.org/10.1002/pc.20408
ASTM D3822-07 (2007) Standard Test Method for Tensile Properties of Single Textile Fibers. ASTM International, West Conshohocken.
AOAC (2003) Official Methods of Analysis of AOAC International. 17th Edition, Association of the Official Analytical Chemists (AOAC) International, Gaithersburg.
Stocklassa, B., Aransay-Vitores, M., Nilsson, G., Karlsson, C., Wiegleb, D. and Forslind, B. (2000) Evaluation of a New X-Ray Fluorescent Analysis Technique for the Creation of a Nordic Hair Database: Elemental Distributions within the Root and Virgin Segment of Hair Fibers. Journal of Cosmetic Science, 52, 297-311.
Sukumar, A. (2002) Factors Influencing Levels of Trace Elements in Human Hair. Reviews of Environmental Contamination and Toxicology, 175, 47-78.
Combs, D.K. (1987) Hair Analysis as an Indicator of Mineral Status of Livestock. Journal of Animal Science, 65, 1753-1758. https://doi.org/10.2527/jas1987.6561753x
Shah, D.U., Schubel, P.J. and Clifford, M.J. (2013) Can Flax Replace E-Glass in Structural Composites? A Small Wind Turbine Blade Case Study. Composites Part B: Engineering, 52, 172-181. https://doi.org/10.1016/j.compositesb.2013.04.027
Basu, S. (2012) Tensile Deformation of Fibers Used in Textile Industry. http://cp.literature.agilent.com/litweb/pdf/5991-0274EN.pdf
Dias, M.F. (2015) Hair Cosmetics: An Overview. International Journal of Trichology, 7, 2-15. https://doi.org/10.4103/0974-7753.153450
Ramamoorthy, S.K., Di. Q., Adekunle, K. and Skrivars, M. (2012) Effect of Water Absorption on Mechanical Properties of Soybean Oil Thermosets Reinforced with Natural Fibers. Journal of Reinforced Plastics and Composites, 31, 1191-1200. https://doi.org/10.1177/0731684412455257
Cruz, C.F., Costa, C., Gomes, A.C., Matamá, T. and Cavaco-Paulo, A. (2016) Human Hair and Impact of Cosmetic Procedures: A Review on Cleansing and Shape-Modulating Cosmetics. Cosmetics, 3, 26. https://doi.org/10.3390/cosmetics3030026
Oladele, I.O., Olajide, J.L. and Ogunbadejo, A.S. (2015) Effect of Chemical Treatments on the Physicochemical and Tensile Properties of Cow Hair Fibers for Low-Load Bearing Composites Development. International Journal of Materials Science and Applications, 4, 189-197. https://doi.org/10.11648/j.ijmsa.20150403.16
Moore, J.C., DeVries, J.W., Lipp, M., Griffiths, J.C. and Abernethy, D.R. (2010) Total Protein Methods and Their Potential Utility to Reduce the Risk of Food Protein Adulteration. Comprehensive Reviews in Food Science and Food Safety, 9, 330-357. https://doi.org/10.1111/j.1541-4337.2010.00114.x
Sustaita, H.C. (2016) A Close Look at the Properties of Hair and Scalp. www.texascollaborative.org/hildasustaita/module%20files/topic3.htm
Souza, F., Meyer, M., Wulf, H., Klüver, E., Cooper, M. and Gutterres, M. (2015) Extraction of Bovine Hair Keratin from Unhairing Wastes of Hide. 33th International Union of Leather Technologists and Chemists Societies Congress, Novo Hamburgo, 24-27 November 2015, 188-199.
Nakamura, A., Arimoto, M., Takeuchi, K. and Fujii, T. (2002) A Rapid Extraction Procedure of Human Hair Proteins and Identification of Phosphorylated Species. Biological and Pharmaceutical Bulletin, 25, 569-572. https://doi.org/10.1248/bpb.25.569
Fujii, T., Takayama, S. and Ito, Y. (2013) A Novel Purification Procedure for Keratin-Associated Proteins and Keratin from Human Hair. Journal of Biological Macromolecules, 13, 92-106.
Burnett, L. and Boyd, S.A. (2012) Methods for Extracting Keratin Proteins. US Patent Applications 14/238,648.