38
D. K. Subbiah et al.
71. Morais DS, Guedes RM, Lopes MA (2016) Antimicrobial approaches for textiles: from
research to market. Materials (Basel) 9:498
72. Goswami S, dos Santos MA, Nandy S, Igreja R, Barquinha P, Martins R, Fortunato E
(2019) Human-motion interactive energy harvester based on polyaniline functionalized textile fibers following metal/polymer mechano-responsive charge transfer mechanism. Nano
Energy 60:794–801
73. Mondal S, Hu JL (2007) A novel approach to excellent UV protecting cotton fabric with
functionalized MWNT containing water vapor permeable PU coating. J Appl Polym Sci
103:3370–3376
74. Tian M, Du M, Qu L, Chen S, Zhu S, Han G (2017) Electromagnetic interference shielding
cotton fabrics with high electrical conductivity and electrical heating behavior: Via layer-bylayer self-assembly route. RSC Adv 7:42641–42652
75. Kinkeldei T, Zysset C, Cherenack KH, Troster G (2011) A textile integrated sensor system
for monitoring humidity and temperature. In: 16th international solid-state sensors, actuators
microsystems conference, pp 1156–1159
76. Wei Q, Xu Y, Wang Y (2009) Textile surface functionalization by physical vapor deposition
(PVD) In: Q.B.T.-S.M. of Wei T (ed) Surface modified text. Woodhead Publishing, pp 58–90
77. Jiang SX, Qin WF, Tao XM, Zhang ZM, Yuen CWM, Xiong J, Kan CW, Zhang L, Guo
RH, Shang SM (2011) Surface characterization of sputter silver-coated polyester fiber. Fibers
Polym 12:616–619
78. Segura G, Guzmán P, Zuñiga P, Chaves S, Barrantes Y, Navarro G, Asenjo J, Guadamuz S,
Vargas VI, Chaves J (2015) Copper deposition on fabrics by rf plasma sputtering for medical
applications. In: Journal of Physics: Conference Series. IOP Publishing, p 12046
79. Rio L, Kusiak-Nejman E, Kiwi J, Bétrisey B, Pulgarin C, Trampuz A, Bizzini A (2012)
Comparison of methods for evaluation of the bactericidal activity of copper-sputtered surfaces
against methicillin-resistant Staphylococcus aureus. Appl Environ Microbiol 78:8176–8182
80. Liu C, Xu J, Liu Z, Ning X, Jiang S, Miao D (2018) Fabrication of highly electrically conductive Ti/Ag/Ti tri-layer and Ti–Ag alloy thin films on PET fabrics by multi-target magnetron
sputtering. J Mater Sci Mater Electron 29:19578–19587
81. Carneiro JO, Teixeira V, Nascimento JHO, Neves J, Tavares PB (2011) Photocatalytic activity and UV-protection of TiO 2 nanocoatings on poly(lactic acid) fibres deposited by pulsed
magnetron sputtering. J Nanosci Nanotechnol 8979–8985
82. Krämer A, Kunz C, Gräf S, Müller FA (2015) Pulsed laser deposition of anatase thin films
on textile substrates. Appl Surf Sci 353:1046–1051
83. Jelínek M, Trtík V, Jastrabík L (1997) Pulsed laser deposition of thin films BT—physics
and materials science of high temperature superconductors, IV. In: Kossowsky R, Jelinek M,
Novak J (eds) Springer Netherlands, Dordrecht, pp 215–231
84. Kwong HY, Wong MH, Wong YW, Wong KH (2007) Superhydrophobicity of polytetrafluoroethylene thin film fabricated by pulsed laser deposition. Appl Surf Sci 253:8841–8845
85. Duta L, Popescu AC, Dorcioman G, Mihailescu IN, Stan GE, Zgura I, Enculescu I, Dumitrescu
I (2012) ZnO thin films deposited on textile material substrates for biomedical applications:
ZnO thin films deposited on textiles. NATO Sci Peace Secur Ser A Chem Biol, 207–210
86. Depla D, Segers S, Leroy W, Van Hove T, Van Parys M (2011) Smart textiles: an explorative
study of the use of magnetron sputter deposition. Text Res J 81:1808–1817
87. Kern W, Schuegraf KK (2001) Deposition technologies and applications. In: KBT-H of TFDP,
T. (Second Seshan E (ed) Handbook thin film deposition process. Tech. William Andrew
Publishing, Norwich, NY, p 11–43
88. Ohring M (2002) Thin-film evaporation processes. In: MBT-MS of TF (Second Ohring E (ed)
Material science Thin Film. Academic Press, San Diego, pp 95–144
89. Kenry, Lim CT (2017) Nanofiber technology: current status and emerging developments. Prog
Polym Sci 70:1–17
90. Pillay V, Dott C, Choonara YE, Tyagi C, Tomar L, Kumar P, Du Toit LC, Ndesendo VMK
(2013) A review of the effect of processing variables on the fabrication of electrospun
nanofibers for drug delivery applications. J Nanomater 789289
D. K. Subbiah et al.
71. Morais DS, Guedes RM, Lopes MA (2016) Antimicrobial approaches for textiles: from
research to market. Materials (Basel) 9:498
72. Goswami S, dos Santos MA, Nandy S, Igreja R, Barquinha P, Martins R, Fortunato E
(2019) Human-motion interactive energy harvester based on polyaniline functionalized textile fibers following metal/polymer mechano-responsive charge transfer mechanism. Nano
Energy 60:794–801
73. Mondal S, Hu JL (2007) A novel approach to excellent UV protecting cotton fabric with
functionalized MWNT containing water vapor permeable PU coating. J Appl Polym Sci
103:3370–3376
74. Tian M, Du M, Qu L, Chen S, Zhu S, Han G (2017) Electromagnetic interference shielding
cotton fabrics with high electrical conductivity and electrical heating behavior: Via layer-bylayer self-assembly route. RSC Adv 7:42641–42652
75. Kinkeldei T, Zysset C, Cherenack KH, Troster G (2011) A textile integrated sensor system
for monitoring humidity and temperature. In: 16th international solid-state sensors, actuators
microsystems conference, pp 1156–1159
76. Wei Q, Xu Y, Wang Y (2009) Textile surface functionalization by physical vapor deposition
(PVD) In: Q.B.T.-S.M. of Wei T (ed) Surface modified text. Woodhead Publishing, pp 58–90
77. Jiang SX, Qin WF, Tao XM, Zhang ZM, Yuen CWM, Xiong J, Kan CW, Zhang L, Guo
RH, Shang SM (2011) Surface characterization of sputter silver-coated polyester fiber. Fibers
Polym 12:616–619
78. Segura G, Guzmán P, Zuñiga P, Chaves S, Barrantes Y, Navarro G, Asenjo J, Guadamuz S,
Vargas VI, Chaves J (2015) Copper deposition on fabrics by rf plasma sputtering for medical
applications. In: Journal of Physics: Conference Series. IOP Publishing, p 12046
79. Rio L, Kusiak-Nejman E, Kiwi J, Bétrisey B, Pulgarin C, Trampuz A, Bizzini A (2012)
Comparison of methods for evaluation of the bactericidal activity of copper-sputtered surfaces
against methicillin-resistant Staphylococcus aureus. Appl Environ Microbiol 78:8176–8182
80. Liu C, Xu J, Liu Z, Ning X, Jiang S, Miao D (2018) Fabrication of highly electrically conductive Ti/Ag/Ti tri-layer and Ti–Ag alloy thin films on PET fabrics by multi-target magnetron
sputtering. J Mater Sci Mater Electron 29:19578–19587
81. Carneiro JO, Teixeira V, Nascimento JHO, Neves J, Tavares PB (2011) Photocatalytic activity and UV-protection of TiO 2 nanocoatings on poly(lactic acid) fibres deposited by pulsed
magnetron sputtering. J Nanosci Nanotechnol 8979–8985
82. Krämer A, Kunz C, Gräf S, Müller FA (2015) Pulsed laser deposition of anatase thin films
on textile substrates. Appl Surf Sci 353:1046–1051
83. Jelínek M, Trtík V, Jastrabík L (1997) Pulsed laser deposition of thin films BT—physics
and materials science of high temperature superconductors, IV. In: Kossowsky R, Jelinek M,
Novak J (eds) Springer Netherlands, Dordrecht, pp 215–231
84. Kwong HY, Wong MH, Wong YW, Wong KH (2007) Superhydrophobicity of polytetrafluoroethylene thin film fabricated by pulsed laser deposition. Appl Surf Sci 253:8841–8845
85. Duta L, Popescu AC, Dorcioman G, Mihailescu IN, Stan GE, Zgura I, Enculescu I, Dumitrescu
I (2012) ZnO thin films deposited on textile material substrates for biomedical applications:
ZnO thin films deposited on textiles. NATO Sci Peace Secur Ser A Chem Biol, 207–210
86. Depla D, Segers S, Leroy W, Van Hove T, Van Parys M (2011) Smart textiles: an explorative
study of the use of magnetron sputter deposition. Text Res J 81:1808–1817
87. Kern W, Schuegraf KK (2001) Deposition technologies and applications. In: KBT-H of TFDP,
T. (Second Seshan E (ed) Handbook thin film deposition process. Tech. William Andrew
Publishing, Norwich, NY, p 11–43
88. Ohring M (2002) Thin-film evaporation processes. In: MBT-MS of TF (Second Ohring E (ed)
Material science Thin Film. Academic Press, San Diego, pp 95–144
89. Kenry, Lim CT (2017) Nanofiber technology: current status and emerging developments. Prog
Polym Sci 70:1–17
90. Pillay V, Dott C, Choonara YE, Tyagi C, Tomar L, Kumar P, Du Toit LC, Ndesendo VMK
(2013) A review of the effect of processing variables on the fabrication of electrospun
nanofibers for drug delivery applications. J Nanomater 789289
