Surface Modification of Textiles with Nanomaterials …
39
91. Shi X, Zhou W, Ma D, Ma Q, Bridges D, Ma Y, Hu A (2015) Electrospinning of nanofibers
and their applications for energy devices. J Nanomater 140716
92. Xue J, Wu T, Dai Y, Xia Y (2019) Electrospinning and electrospun nanofibers: methods,
materials, and applications. Chem Rev 119:5298–5415
93. Rao BG, Mukherjee D, Reddy BM (2017) Novel approaches for preparation of nanoparticles.
In: Ficai D, AMBT-N for Grumezescu NT (eds) Nanostructures Nov. Ther. synthesis character
application. Elsevier, pp 1–36
94. De M (2014) Solid catalysts. NPTEL. 1–53
95. Bentis A, Boukhriss A, Boyer D, Gmouh S (2017) Development of flame retardant cotton
fabric based on ionic liquids via sol-gel technique. In: IOP conference series materials science
engineering, p 122001
96. Jung DS, Ko YN, Kang YC, Bin Park S (2014) Recent progress in electrode materials produced
by spray pyrolysis for next-generation lithium ion batteries. Adv Powder Technol 25:18–31
97. Mooney JB, Radding SB (1982) Spray pyrolysis processing. Annu Rev Mater Sci, 81–101
98. Vinay Kumar Singh HNS (2017) Versatility of spray pyrolysis technique for the deposition
of carbon thin films. J Emerg Technol Innov Res 4
99. Bourfaa F, Lamri Zeggar M, Adjimi A, Aida MS, Attaf N (2016) Investigation of photocatalytic activity of ZnO prepared by spray pyrolis with various precursors. In: IOP conference
series materials science engineering. IOP Publishing, p 12049
100. Manoharan C, Pavithra G, Bououdina M, Dhanapandian S, Dhamodharan P (2016) Characterization and study of antibacterial activity of spray pyrolysed ZnO:Al thin films. Appl
Nanosci 6:815–825
101. Rajendran V, Dhineshbabu NR, Kanna RR, Kaler KVISIS (2014) Enhancement of thermal
stability, flame retardancy, and antimicrobial properties of cotton fabrics functionalized by
inorganic nanocomposites. Ind Eng Chem Res 53:19512–19524
102. Hu X, Tian M, Qu L, Zhu S, Han G (2015) Multifunctional cotton fabrics with
graphene/polyurethane coatings with far-infrared emission, electrical conductivity, and
ultraviolet-blocking properties. Carbon NY 95:625–633
103. Xu QB, Ke XT, Shen LW, Ge NQ, Zhang YY, Fu FY, Liu XD (2018) Surface modification
by carboxymethy chitosan via pad-dry-cure method for binding Ag NPs onto cotton fabric.
Int J Biol Macromol 111:796–803
104. Mondal MIH, Saha J (2019) Antimicrobial, UV resistant and thermal comfort properties of
chitosan- and Aloe vera-modified cotton woven fabric. J Polym Environ 27:405–420
105. Gong S, Lai DTH, Wang Y, Yap LW, Si KJ, Shi Q, Jason NN, Sridhar T, Uddin H, Cheng W
(2015) Tattoo like polyaniline microparticle-doped gold nanowire patches as highly durable
wearable sensors. ACS Appl Mater Interfaces 7:19700–19708
106. Chittenden T (2017) Skin in the game: the use of sensing smart fabrics in tennis costume as
a means of analyzing performance. Fash Text 4:1–21
107. Wang ZL, Song J (2006) Piezoelectric nanogenerators based on zinc oxide nanowire arrays.
Science 312(5771):242–246
108. Zhu Y, Murali S, Stoller MD, Ganesh KJ, Cai W, Ferreira PJ, Pirkle A, Wallace RM, Cychosz
KA, Thommes M, Su D, Stach EA, Ruoff RS (2011) Carbon-based supercapacitors produced
by activation of graphene. Science 332(6037):1537–1541
109. Yi F, Wang J, Wang X, Niu S, Li S, Liao Q, Xu Y, You Z, Zhang Y, Wang ZL (2016) Stretchable
and waterproof self-charging power system for harvesting energy from diverse deformation
and powering wearable electronics. ACS Nano 10:6519–6525
110. Paosangthong W, Torah R, Beeby S (2019) Recent progress on textile-based triboelectric
nanogenerators. Nano Energy 55:401–423
111. Zhong J, Zhang Y, Zhong Q, Hu Q, Hu B, Wang ZL, Zhou J (2014) Fiber-based generator for
wearable electronics and mobile medication. ACS Nano 8:6273–6280
112. Wang ZL (2013) Triboelectric nanogenerators as new energy technology for self-powered
systems and as active mechanical and chemical sensors. ACS Nano 7:9533–9557
113. Zhang C, Wang ZL (2018) Triboelectric nanogenerators. Springer Nature, Singapore, pp
1335–1376
39
91. Shi X, Zhou W, Ma D, Ma Q, Bridges D, Ma Y, Hu A (2015) Electrospinning of nanofibers
and their applications for energy devices. J Nanomater 140716
92. Xue J, Wu T, Dai Y, Xia Y (2019) Electrospinning and electrospun nanofibers: methods,
materials, and applications. Chem Rev 119:5298–5415
93. Rao BG, Mukherjee D, Reddy BM (2017) Novel approaches for preparation of nanoparticles.
In: Ficai D, AMBT-N for Grumezescu NT (eds) Nanostructures Nov. Ther. synthesis character
application. Elsevier, pp 1–36
94. De M (2014) Solid catalysts. NPTEL. 1–53
95. Bentis A, Boukhriss A, Boyer D, Gmouh S (2017) Development of flame retardant cotton
fabric based on ionic liquids via sol-gel technique. In: IOP conference series materials science
engineering, p 122001
96. Jung DS, Ko YN, Kang YC, Bin Park S (2014) Recent progress in electrode materials produced
by spray pyrolysis for next-generation lithium ion batteries. Adv Powder Technol 25:18–31
97. Mooney JB, Radding SB (1982) Spray pyrolysis processing. Annu Rev Mater Sci, 81–101
98. Vinay Kumar Singh HNS (2017) Versatility of spray pyrolysis technique for the deposition
of carbon thin films. J Emerg Technol Innov Res 4
99. Bourfaa F, Lamri Zeggar M, Adjimi A, Aida MS, Attaf N (2016) Investigation of photocatalytic activity of ZnO prepared by spray pyrolis with various precursors. In: IOP conference
series materials science engineering. IOP Publishing, p 12049
100. Manoharan C, Pavithra G, Bououdina M, Dhanapandian S, Dhamodharan P (2016) Characterization and study of antibacterial activity of spray pyrolysed ZnO:Al thin films. Appl
Nanosci 6:815–825
101. Rajendran V, Dhineshbabu NR, Kanna RR, Kaler KVISIS (2014) Enhancement of thermal
stability, flame retardancy, and antimicrobial properties of cotton fabrics functionalized by
inorganic nanocomposites. Ind Eng Chem Res 53:19512–19524
102. Hu X, Tian M, Qu L, Zhu S, Han G (2015) Multifunctional cotton fabrics with
graphene/polyurethane coatings with far-infrared emission, electrical conductivity, and
ultraviolet-blocking properties. Carbon NY 95:625–633
103. Xu QB, Ke XT, Shen LW, Ge NQ, Zhang YY, Fu FY, Liu XD (2018) Surface modification
by carboxymethy chitosan via pad-dry-cure method for binding Ag NPs onto cotton fabric.
Int J Biol Macromol 111:796–803
104. Mondal MIH, Saha J (2019) Antimicrobial, UV resistant and thermal comfort properties of
chitosan- and Aloe vera-modified cotton woven fabric. J Polym Environ 27:405–420
105. Gong S, Lai DTH, Wang Y, Yap LW, Si KJ, Shi Q, Jason NN, Sridhar T, Uddin H, Cheng W
(2015) Tattoo like polyaniline microparticle-doped gold nanowire patches as highly durable
wearable sensors. ACS Appl Mater Interfaces 7:19700–19708
106. Chittenden T (2017) Skin in the game: the use of sensing smart fabrics in tennis costume as
a means of analyzing performance. Fash Text 4:1–21
107. Wang ZL, Song J (2006) Piezoelectric nanogenerators based on zinc oxide nanowire arrays.
Science 312(5771):242–246
108. Zhu Y, Murali S, Stoller MD, Ganesh KJ, Cai W, Ferreira PJ, Pirkle A, Wallace RM, Cychosz
KA, Thommes M, Su D, Stach EA, Ruoff RS (2011) Carbon-based supercapacitors produced
by activation of graphene. Science 332(6037):1537–1541
109. Yi F, Wang J, Wang X, Niu S, Li S, Liao Q, Xu Y, You Z, Zhang Y, Wang ZL (2016) Stretchable
and waterproof self-charging power system for harvesting energy from diverse deformation
and powering wearable electronics. ACS Nano 10:6519–6525
110. Paosangthong W, Torah R, Beeby S (2019) Recent progress on textile-based triboelectric
nanogenerators. Nano Energy 55:401–423
111. Zhong J, Zhang Y, Zhong Q, Hu Q, Hu B, Wang ZL, Zhou J (2014) Fiber-based generator for
wearable electronics and mobile medication. ACS Nano 8:6273–6280
112. Wang ZL (2013) Triboelectric nanogenerators as new energy technology for self-powered
systems and as active mechanical and chemical sensors. ACS Nano 7:9533–9557
113. Zhang C, Wang ZL (2018) Triboelectric nanogenerators. Springer Nature, Singapore, pp
1335–1376
