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59. Nadanathangam V, Vigneshwaran N, Kumar S, Kathe AA, Varadarajan PV, Prasad V (2006)
Functional finishing of cotton fabrics using zinc oxide-soluble starch nanocomposites at CIRCOT, Mumbai view project functional finishing of cotton fabrics using zinc oxide-soluble
starch nanocomposites functional finishing of cotton fabrics using zinc oxide-soluble starch
nanocomposites. Train Adv Microsc View Proj Train Adv Nanotechnol (17): 5087–5095
60. Vigneshwaran N, Nachane RP, Balasubramanya RH, Varadarajan PV (2006) A novel onepot ‘green’ synthesis of stable silver nanoparticles using soluble starch. Carbohydr Res
341(12):2012–2018
61. Jalan V, Butola BS (2018) Influence of binder type on color characteristics of cotton fabric
colored with a photochromic colorant. J Nat Fibers 15(2):229–238
62. Athauda TJ, Ozer RR (2012) Investigation of the effect of dual-size coatings on the
hydrophobicity of cotton surface. Cellulose 19(3):1031–1040
63. Yu M, Gu G, Meng W-D, Qing F-L (2007) Superhydrophobic cotton fabric coating based on
a complex layer of silica nanoparticles and perfluorooctylated quaternary ammonium silane
coupling agent. Appl Surf Sci 253(7):3669–3673
64. Jeong SA, Kang TJ (2016) Superhydrophobic and transparent surfaces on cotton fabrics coated
with silica nanoparticles for hierarchical roughness. Text Res J. pp. 1–9
65. Te Hsieh C, Wu FL, Yang SY (2008) Superhydrophobicity from composite
nano/microstructures: Carbon fabrics coated with silica nanoparticles. Surf Coatings Technol
202(24):6103–6108
66. Zimmermann J, Reifler FA, Fortunato G, Gerhardt LC, Seeger S (2008) A simple, one-step
approach to durable and robust superhydrophobic textiles. Adv Funct Mater 18(22):3662–3669
67. Zhao Y, Tang Y, Wang X, Lin T (2010) Superhydrophobic cotton fabric fabricated by
electrostatic assembly of silica nanoparticles and its remarkable buoyancy. Appl Surf Sci
256(22):6736–6742
68. Xue C-H, Jia S-T, Zhang J, Tian L-Q (2009) Superhydrophobic surfaces on cotton textiles by
complex coating of silica nanoparticles and hydrophobization. Thin Solid Films 517(16):4593–
4598
69. Zhou C, Chen Z, Yang H, Hou K, Zeng X, Zheng Y, Cheng J (2017) Nature-inspired strategy
toward superhydrophobic fabrics for versatile oil/water separation. ACS Appl Mater Interfaces
9(10):9184–9194
70. Nanotex–Stain, Moisture, Odor & Wrinkle Resistant Apparel Fabrics. [Online]. Available:
https://www.nanotex.com/. Accessed on 07 Jul 2019
71. Schoeller Textil AG, Nanosphere–Technologies, Schoeller Textiles AG. Schoeller Website,
2019. [Online]. Available: https://www.schoeller-textiles.com/en/technologies/nanosphere.
Accessed on 07 Jul 2019
72. Wang R, Hashimoto K, Fujishima A, Chikuni M, Kojima E, Kitamura A, Shimohigoshi
M, Watanabe T (1997) Light-induced amphiphilic surfaces [4]. Nature 388(6641): 431–432.
Nature Publishing Group, Jul-1997
73. Jiang Y, Wang Z, Yu X, Shi F, Xu H, Zhang X, Smet M, Dehaen W (2005) Self-assembled
monolayers of dendron thiols for electrodeposition of gold nanostructures: Toward fabrication of superhydrophobic/superhydrophilic surfaces and pH-responsive surfaces. Langmuir
21(5):1986–1990
74. Sun T, Wang G, Feng L, Liu B, Ma Y, Jiang L, Zhu D (2004) Reversible switching between
superhydrophilicity and superhydrophobicity. Angew Chemie-Int Ed 43(3):357–360
75. Xia F, Feng L, Wang S, Sun T, Song W, Jiang W, Jiang L (2006) Dual-responsive surfaces that
switch between superhydrophilicity and superhydrophobicity. Adv Mater 18(4):432–436
76. Xu L, Chen W, Mulchandani A, Yan Y (2005) Reversible conversion of conducting polymer
films from superhydrophobic to superhydrophilic. Angew Chemie-Int Ed 44(37):6009–6012
77. Russell TP (2002) Surface-responsive materials. Science 297(5583): 964–967. American
Association for the Advancement of Science, 09-Aug-2002
78. Motornov M, Minko S, Eichhorn KJ, Nitschke M, Simon F, Stamm M (2003) Reversible
tuning of wetting behavior of polymer surface with responsive polymer brushes. Langmuir
19(19):8077–8085
215
59. Nadanathangam V, Vigneshwaran N, Kumar S, Kathe AA, Varadarajan PV, Prasad V (2006)
Functional finishing of cotton fabrics using zinc oxide-soluble starch nanocomposites at CIRCOT, Mumbai view project functional finishing of cotton fabrics using zinc oxide-soluble
starch nanocomposites functional finishing of cotton fabrics using zinc oxide-soluble starch
nanocomposites. Train Adv Microsc View Proj Train Adv Nanotechnol (17): 5087–5095
60. Vigneshwaran N, Nachane RP, Balasubramanya RH, Varadarajan PV (2006) A novel onepot ‘green’ synthesis of stable silver nanoparticles using soluble starch. Carbohydr Res
341(12):2012–2018
61. Jalan V, Butola BS (2018) Influence of binder type on color characteristics of cotton fabric
colored with a photochromic colorant. J Nat Fibers 15(2):229–238
62. Athauda TJ, Ozer RR (2012) Investigation of the effect of dual-size coatings on the
hydrophobicity of cotton surface. Cellulose 19(3):1031–1040
63. Yu M, Gu G, Meng W-D, Qing F-L (2007) Superhydrophobic cotton fabric coating based on
a complex layer of silica nanoparticles and perfluorooctylated quaternary ammonium silane
coupling agent. Appl Surf Sci 253(7):3669–3673
64. Jeong SA, Kang TJ (2016) Superhydrophobic and transparent surfaces on cotton fabrics coated
with silica nanoparticles for hierarchical roughness. Text Res J. pp. 1–9
65. Te Hsieh C, Wu FL, Yang SY (2008) Superhydrophobicity from composite
nano/microstructures: Carbon fabrics coated with silica nanoparticles. Surf Coatings Technol
202(24):6103–6108
66. Zimmermann J, Reifler FA, Fortunato G, Gerhardt LC, Seeger S (2008) A simple, one-step
approach to durable and robust superhydrophobic textiles. Adv Funct Mater 18(22):3662–3669
67. Zhao Y, Tang Y, Wang X, Lin T (2010) Superhydrophobic cotton fabric fabricated by
electrostatic assembly of silica nanoparticles and its remarkable buoyancy. Appl Surf Sci
256(22):6736–6742
68. Xue C-H, Jia S-T, Zhang J, Tian L-Q (2009) Superhydrophobic surfaces on cotton textiles by
complex coating of silica nanoparticles and hydrophobization. Thin Solid Films 517(16):4593–
4598
69. Zhou C, Chen Z, Yang H, Hou K, Zeng X, Zheng Y, Cheng J (2017) Nature-inspired strategy
toward superhydrophobic fabrics for versatile oil/water separation. ACS Appl Mater Interfaces
9(10):9184–9194
70. Nanotex–Stain, Moisture, Odor & Wrinkle Resistant Apparel Fabrics. [Online]. Available:
https://www.nanotex.com/. Accessed on 07 Jul 2019
71. Schoeller Textil AG, Nanosphere–Technologies, Schoeller Textiles AG. Schoeller Website,
2019. [Online]. Available: https://www.schoeller-textiles.com/en/technologies/nanosphere.
Accessed on 07 Jul 2019
72. Wang R, Hashimoto K, Fujishima A, Chikuni M, Kojima E, Kitamura A, Shimohigoshi
M, Watanabe T (1997) Light-induced amphiphilic surfaces [4]. Nature 388(6641): 431–432.
Nature Publishing Group, Jul-1997
73. Jiang Y, Wang Z, Yu X, Shi F, Xu H, Zhang X, Smet M, Dehaen W (2005) Self-assembled
monolayers of dendron thiols for electrodeposition of gold nanostructures: Toward fabrication of superhydrophobic/superhydrophilic surfaces and pH-responsive surfaces. Langmuir
21(5):1986–1990
74. Sun T, Wang G, Feng L, Liu B, Ma Y, Jiang L, Zhu D (2004) Reversible switching between
superhydrophilicity and superhydrophobicity. Angew Chemie-Int Ed 43(3):357–360
75. Xia F, Feng L, Wang S, Sun T, Song W, Jiang W, Jiang L (2006) Dual-responsive surfaces that
switch between superhydrophilicity and superhydrophobicity. Adv Mater 18(4):432–436
76. Xu L, Chen W, Mulchandani A, Yan Y (2005) Reversible conversion of conducting polymer
films from superhydrophobic to superhydrophilic. Angew Chemie-Int Ed 44(37):6009–6012
77. Russell TP (2002) Surface-responsive materials. Science 297(5583): 964–967. American
Association for the Advancement of Science, 09-Aug-2002
78. Motornov M, Minko S, Eichhorn KJ, Nitschke M, Simon F, Stamm M (2003) Reversible
tuning of wetting behavior of polymer surface with responsive polymer brushes. Langmuir
19(19):8077–8085
