36
Jiang, A., Xu, X., & Wu, H. (2016). Preparation and properties of L-lactide-grafted sisal fiber–
reinforced poly(lactic acid) composites. Polymer Composites, 37(3), 802–809. https://doi.
org/10.1002/pc.23237.
Kale, K. H., & Palaskar, S. S. (2012a). Plasma enhanced chemical vapor deposition of tetraethylorthosilicate and hexamethyldisiloxane on polyester fabrics under pulsed and continuous wave
discharge. Journal of Applied Polymer Science, 125(5), 3996–4006. https://doi.org/10.1002/
app.36601.
Kale, K. H., & Palaskar, S. S. (2012b). Structural studies of plasma polymers obtained in pulsed
dielectric barrier discharge of TEOS and HMDSO on nylon 66 fabrics. Journal of the Textile
Institute, 103(10), 1088–1098. https://doi.org/10.1080/00405000.2012.660757.
Kanelli, M., Vasilakos, S., Ladas, S., Symianakis, E., Christakopoulos, P., & Topakas, E. (2017).
Surface modification of polyamide 6.6 fibers by enzymatic hydrolysis. Process Biochemistry,
59(Part A), 97–103. https://doi.org/10.1016/j.procbio.2016.06.022.
Karaj-Abad, S. G., Abbasian, M., & Jaymand, M. (2016). Grafting of poly[(methyl methacrylate)block-styrene] onto cellulose via nitroxide-mediated polymerization, and its polymer/
clay nanocomposite. Carbohydrate Polymers, 152, 297–305. https://doi.org/10.1016/j.
carbpol.2016.07.017.
Kaur, A., & Chakraborty, J. N. (2015). Optimization of bromelain treatment pH with wool for
antifelting and reduced pilling behaviour: Objective assessment approach. Journal of Textiles,
230879. https://doi.org/10.1155/2015/230879.
Kellersztein, I., Amir, E., & Dotan, A. (2016). Grafting of wheat straw fibers with poly
(ε-caprolactone) via ring-opening polymerization for poly(lactic acid) reinforcement. Polymers
for Advanced Technologies, 27(5), 657–664. https://doi.org/10.1002/pat.3736.
Khatri, A., Peerzada, M. H., Mohsin, M., & White, M. (2015). A review on developments in
dyeing cotton fabrics with reactive dyes for reducing effluent pollution. Journal of Cleaner
Production, 87, 50–57. https://doi.org/10.1016/j.jclepro.2014.09.017.
Khoddami, A., Avinc, O., & Ghahremanzadeh, F. (2011). Improvement in poly(lactic acid) fabric
performance via hydrophilic coating. Progress in Organic Coatings, 72(3), 299–304. https://
doi.org/10.1016/j.porgcoat.2011.04.020.
Kiehl, K., Straube, T., Opwis, K., & Gutmann, J. S. (2015). Strategies for permanent immobilization of enzymes on textile carriers. Engineering in Life Sciences, 15(6), 622–626. https://doi.
org/10.1002/elsc.201400148.
Kim, H. R., & Seo, H. Y. (2013). Enzymatic hydrolysis of polyamide fabric by using acylase.
Textile Research Journal, 83(11), 1181–1189. https://doi.org/10.1177/0040517512471747.
Kim, H. R., & Song, W. S. (2010). Optimization of papain treatment for improving the hydrophilicity of polyester fabrics. Fibers and Polymers, 11(1), 67–71. https://doi.org/10.1007/
s12221-010-0067-z.
Kim, E.-Y., An, S.-K., & Kim, H.-D. (1997). Graft copolymerization of ϵ-Caprolactam
onto Kevlar-49 fiber surface and properties of grafted Kevlar fiber reinforced composite. Journal of Applied Polymer Science, 65(1), 99–107. https://doi.org/10.1002/
(sici)1097-4628(19970705)65:1<99::aid-app13>3.0.co;2-u.
Klemm, D., Philipp, B., Heinze, T., Heinze, U., & Wagenknecht, W. (2004a). General considerations on structure and reactivity of cellulose: Section 2.2–2.2.3. In Comprehensive cellulose chemistry (Vol. I, pp. 43–82). Weinheim: Wiley-VCH Verlag GmbH. https://doi.
org/10.1002/3527601929.ch2c.
Klemm, D., Philipp, B., Heinze, T., Heinze, U., & Wagenknecht, W. (2004b). Systematics of cellulose functionalization: Section 4.2–4.2.2.7. In Comprehensive cellulose chemistry (pp. 31–51).
https://doi.org/10.1002/3527601937.ch1b.
Kongdee, A., Bechtold, T., & Teufel, L. (2005). Modification of cellulose fiber with silk sericin.
Journal of Applied Polymer Science, 96(4), 1421–1428. https://doi.org/10.1002/app.21576.
Kopecká, J., Kopecký, D., Vrňata, M., Fitl, P., Stejskal, J., Trchová, M., Bober, P., Morávková,
Z., Prokeš, J., & Sapurina, I. (2014). Polypyrrole nanotubes: Mechanism of formation. RSC
Advances, 4(4), 1551–1558. https://doi.org/10.1039/c3ra45841e.
A. P. Manian et al.
Jiang, A., Xu, X., & Wu, H. (2016). Preparation and properties of L-lactide-grafted sisal fiber–
reinforced poly(lactic acid) composites. Polymer Composites, 37(3), 802–809. https://doi.
org/10.1002/pc.23237.
Kale, K. H., & Palaskar, S. S. (2012a). Plasma enhanced chemical vapor deposition of tetraethylorthosilicate and hexamethyldisiloxane on polyester fabrics under pulsed and continuous wave
discharge. Journal of Applied Polymer Science, 125(5), 3996–4006. https://doi.org/10.1002/
app.36601.
Kale, K. H., & Palaskar, S. S. (2012b). Structural studies of plasma polymers obtained in pulsed
dielectric barrier discharge of TEOS and HMDSO on nylon 66 fabrics. Journal of the Textile
Institute, 103(10), 1088–1098. https://doi.org/10.1080/00405000.2012.660757.
Kanelli, M., Vasilakos, S., Ladas, S., Symianakis, E., Christakopoulos, P., & Topakas, E. (2017).
Surface modification of polyamide 6.6 fibers by enzymatic hydrolysis. Process Biochemistry,
59(Part A), 97–103. https://doi.org/10.1016/j.procbio.2016.06.022.
Karaj-Abad, S. G., Abbasian, M., & Jaymand, M. (2016). Grafting of poly[(methyl methacrylate)block-styrene] onto cellulose via nitroxide-mediated polymerization, and its polymer/
clay nanocomposite. Carbohydrate Polymers, 152, 297–305. https://doi.org/10.1016/j.
carbpol.2016.07.017.
Kaur, A., & Chakraborty, J. N. (2015). Optimization of bromelain treatment pH with wool for
antifelting and reduced pilling behaviour: Objective assessment approach. Journal of Textiles,
230879. https://doi.org/10.1155/2015/230879.
Kellersztein, I., Amir, E., & Dotan, A. (2016). Grafting of wheat straw fibers with poly
(ε-caprolactone) via ring-opening polymerization for poly(lactic acid) reinforcement. Polymers
for Advanced Technologies, 27(5), 657–664. https://doi.org/10.1002/pat.3736.
Khatri, A., Peerzada, M. H., Mohsin, M., & White, M. (2015). A review on developments in
dyeing cotton fabrics with reactive dyes for reducing effluent pollution. Journal of Cleaner
Production, 87, 50–57. https://doi.org/10.1016/j.jclepro.2014.09.017.
Khoddami, A., Avinc, O., & Ghahremanzadeh, F. (2011). Improvement in poly(lactic acid) fabric
performance via hydrophilic coating. Progress in Organic Coatings, 72(3), 299–304. https://
doi.org/10.1016/j.porgcoat.2011.04.020.
Kiehl, K., Straube, T., Opwis, K., & Gutmann, J. S. (2015). Strategies for permanent immobilization of enzymes on textile carriers. Engineering in Life Sciences, 15(6), 622–626. https://doi.
org/10.1002/elsc.201400148.
Kim, H. R., & Seo, H. Y. (2013). Enzymatic hydrolysis of polyamide fabric by using acylase.
Textile Research Journal, 83(11), 1181–1189. https://doi.org/10.1177/0040517512471747.
Kim, H. R., & Song, W. S. (2010). Optimization of papain treatment for improving the hydrophilicity of polyester fabrics. Fibers and Polymers, 11(1), 67–71. https://doi.org/10.1007/
s12221-010-0067-z.
Kim, E.-Y., An, S.-K., & Kim, H.-D. (1997). Graft copolymerization of ϵ-Caprolactam
onto Kevlar-49 fiber surface and properties of grafted Kevlar fiber reinforced composite. Journal of Applied Polymer Science, 65(1), 99–107. https://doi.org/10.1002/
(sici)1097-4628(19970705)65:1<99::aid-app13>3.0.co;2-u.
Klemm, D., Philipp, B., Heinze, T., Heinze, U., & Wagenknecht, W. (2004a). General considerations on structure and reactivity of cellulose: Section 2.2–2.2.3. In Comprehensive cellulose chemistry (Vol. I, pp. 43–82). Weinheim: Wiley-VCH Verlag GmbH. https://doi.
org/10.1002/3527601929.ch2c.
Klemm, D., Philipp, B., Heinze, T., Heinze, U., & Wagenknecht, W. (2004b). Systematics of cellulose functionalization: Section 4.2–4.2.2.7. In Comprehensive cellulose chemistry (pp. 31–51).
https://doi.org/10.1002/3527601937.ch1b.
Kongdee, A., Bechtold, T., & Teufel, L. (2005). Modification of cellulose fiber with silk sericin.
Journal of Applied Polymer Science, 96(4), 1421–1428. https://doi.org/10.1002/app.21576.
Kopecká, J., Kopecký, D., Vrňata, M., Fitl, P., Stejskal, J., Trchová, M., Bober, P., Morávková,
Z., Prokeš, J., & Sapurina, I. (2014). Polypyrrole nanotubes: Mechanism of formation. RSC
Advances, 4(4), 1551–1558. https://doi.org/10.1039/c3ra45841e.
A. P. Manian et al.
