Surface Modification of Textiles with Nanomaterials …
37
49. Peterson GW, Lu AX, Epps TH (2017) Tuning the morphology and activity of electrospun
polystyrene/UiO-66-NH 2 metal-organic framework composites to enhance chemical warfare
agent removal. ACS Appl Mater Interfaces 9:32248–32254
50. Bunge MA, Davis AB, West KN, West CW, Glover TG (2018) Synthesis and characterization of UiO-66-NH 2 metal-organic framework cotton composite textiles. Ind Eng Chem Res
57:9151–9161
51. Mizutani U (2001) Introduction to the electron theory of metals. Cambridge University Press,
Cambridge
52. Alim MA, Batra AK, Aggarwal MD, Currie JR (2011) Immittance response of the SnO 2 Bi 2 O 3
based thick-films. Phys B Condens Matter 406:1445–1452
53. Sivalingam D, Gopalakrishnan JB, Rayappan JBB (2012) Structural, morphological, electrical
and vapour sensing properties of Mn doped nanostructured ZnO thin films. Sens Actuators B
Chem 166–167:624–631
54. Dickey MD (2017) Stretchable and soft electronics using liquid metals. Adv Mater
29:1606425
55. Qiu Q, Zhu M, Li Z, Qiu K, Liu X, Yu J, Ding B (2019) Highly flexible, breathable, tailorable
and washable power generation fabrics for wearable electronics. Nano Energy 58:750–758
56. Ding Y, Invernale MA, Sotzing GA (2010) Conductivity trends of pedot-pss impregnated
fabric and the effect of conductivity on electrochromic textile. ACS Appl Mater Interfaces
2:1588–1593
57. Gao A, Zhang H, Sun G, Xie K, Hou A (2017) Light-induced antibacterial and UV-protective
properties of polyamide 56 biomaterial modified with anthraquinone and benzophenone
derivatives. Mater Des 130:215–222
58. Subbiah DK, Babu KJ, Das A, Rayappan JBB (2019) NiO x nanoflower modified cotton fabric
for UV filter and gas sensing applications. ACS Appl Mater Interfaces 11(22):20045–20055
59. Lee K, Lee S (2012) Multi functionality of poly(vinyl alcohol) nanofiber webs containing
titanium dioxide. J Appl Polym Sci 124:4038–4046
60. Khandual A, Luximon A, Sachdeva A, Rout N, Sahoo PK (2015) Enhancement of functional properties of cotton by conventional dyeing with TiO 2 nanoparticles. Mater Today
Proc 2:3674–3683
61. Liu Y, Xin JH, Choi CH (2012) Cotton fabrics with single-faced superhydrophobicity.
Langmuir 28:17426–17434
62. Xu ZJ, Tian YL, Liu HL, Du ZQ (2015) Cotton fabric finishing with TiO 2 /SiO 2 composite
hydrosol based on ionic cross-linking method. Appl Surf Sci 324:68–75
63. Wang L, Zhang X, Li B, Sun P, Yang J, Xu H, Liu Y (2011) Superhydrophobic and ultravioletblocking cotton textiles. ACS Appl Mater Interfaces 3:1277–1281
64. Ganesan RM, Gurumallesh Prabu H (2019) Synthesis of gold nanoparticles using herbal
Acorus calamus rhizome extract and coating on cotton fabric for antibacterial and UV blocking
applications. Arab J Chem 12:2166–2174
65. Vihodceva S, Barloti J, Kukle S, Zommere G (2015) Natural fibre textile nano-level surface
modification, environ. In: Technology resource proceedings of international science practical
conference, vol 2, 113
66. Ma R, Lee J, Choi D, Moon H, Baik S (2014) Knitted fabrics made from highly conductive
stretchable fibers. Nano Lett 14:1944–1951
67. Hu X, Ren N, Chao Y, Lan H, Yan X, Sha Y, Sha X, Bai Y (2017) Highly aligned
graphene oxide/poly(vinyl alcohol) nanocomposite fibers with high-strength, antiultraviolet
and antibacterial properties. Compos Part A Appl Sci Manuf 102:297–304
68. Qing Y, Cheng L, Li R, Liu G, Zhang Y, Tang X, Wang J, Liu H, Qin Y (2018) Potential
antibacterial mechanism of silver nanoparticles and the optimization of orthopedic implants
by advanced modification technologies. Int J Nanomed 13:3311–3327
69. Gupta RK, Dunderdale GJ, England MW, Hozumi A (2017) Oil/water separation techniques:
a review of recent progresses and future directions. J Mater Chem A 5:16025–16058
70. Xue CH, Chen J, Yin W, Jia ST, Ma JZ (2012) Superhydrophobic conductive textiles with
antibacterial property by coating fibers with silver nanoparticles. Appl Surf Sci 258:2468–
2472
37
49. Peterson GW, Lu AX, Epps TH (2017) Tuning the morphology and activity of electrospun
polystyrene/UiO-66-NH 2 metal-organic framework composites to enhance chemical warfare
agent removal. ACS Appl Mater Interfaces 9:32248–32254
50. Bunge MA, Davis AB, West KN, West CW, Glover TG (2018) Synthesis and characterization of UiO-66-NH 2 metal-organic framework cotton composite textiles. Ind Eng Chem Res
57:9151–9161
51. Mizutani U (2001) Introduction to the electron theory of metals. Cambridge University Press,
Cambridge
52. Alim MA, Batra AK, Aggarwal MD, Currie JR (2011) Immittance response of the SnO 2 Bi 2 O 3
based thick-films. Phys B Condens Matter 406:1445–1452
53. Sivalingam D, Gopalakrishnan JB, Rayappan JBB (2012) Structural, morphological, electrical
and vapour sensing properties of Mn doped nanostructured ZnO thin films. Sens Actuators B
Chem 166–167:624–631
54. Dickey MD (2017) Stretchable and soft electronics using liquid metals. Adv Mater
29:1606425
55. Qiu Q, Zhu M, Li Z, Qiu K, Liu X, Yu J, Ding B (2019) Highly flexible, breathable, tailorable
and washable power generation fabrics for wearable electronics. Nano Energy 58:750–758
56. Ding Y, Invernale MA, Sotzing GA (2010) Conductivity trends of pedot-pss impregnated
fabric and the effect of conductivity on electrochromic textile. ACS Appl Mater Interfaces
2:1588–1593
57. Gao A, Zhang H, Sun G, Xie K, Hou A (2017) Light-induced antibacterial and UV-protective
properties of polyamide 56 biomaterial modified with anthraquinone and benzophenone
derivatives. Mater Des 130:215–222
58. Subbiah DK, Babu KJ, Das A, Rayappan JBB (2019) NiO x nanoflower modified cotton fabric
for UV filter and gas sensing applications. ACS Appl Mater Interfaces 11(22):20045–20055
59. Lee K, Lee S (2012) Multi functionality of poly(vinyl alcohol) nanofiber webs containing
titanium dioxide. J Appl Polym Sci 124:4038–4046
60. Khandual A, Luximon A, Sachdeva A, Rout N, Sahoo PK (2015) Enhancement of functional properties of cotton by conventional dyeing with TiO 2 nanoparticles. Mater Today
Proc 2:3674–3683
61. Liu Y, Xin JH, Choi CH (2012) Cotton fabrics with single-faced superhydrophobicity.
Langmuir 28:17426–17434
62. Xu ZJ, Tian YL, Liu HL, Du ZQ (2015) Cotton fabric finishing with TiO 2 /SiO 2 composite
hydrosol based on ionic cross-linking method. Appl Surf Sci 324:68–75
63. Wang L, Zhang X, Li B, Sun P, Yang J, Xu H, Liu Y (2011) Superhydrophobic and ultravioletblocking cotton textiles. ACS Appl Mater Interfaces 3:1277–1281
64. Ganesan RM, Gurumallesh Prabu H (2019) Synthesis of gold nanoparticles using herbal
Acorus calamus rhizome extract and coating on cotton fabric for antibacterial and UV blocking
applications. Arab J Chem 12:2166–2174
65. Vihodceva S, Barloti J, Kukle S, Zommere G (2015) Natural fibre textile nano-level surface
modification, environ. In: Technology resource proceedings of international science practical
conference, vol 2, 113
66. Ma R, Lee J, Choi D, Moon H, Baik S (2014) Knitted fabrics made from highly conductive
stretchable fibers. Nano Lett 14:1944–1951
67. Hu X, Ren N, Chao Y, Lan H, Yan X, Sha Y, Sha X, Bai Y (2017) Highly aligned
graphene oxide/poly(vinyl alcohol) nanocomposite fibers with high-strength, antiultraviolet
and antibacterial properties. Compos Part A Appl Sci Manuf 102:297–304
68. Qing Y, Cheng L, Li R, Liu G, Zhang Y, Tang X, Wang J, Liu H, Qin Y (2018) Potential
antibacterial mechanism of silver nanoparticles and the optimization of orthopedic implants
by advanced modification technologies. Int J Nanomed 13:3311–3327
69. Gupta RK, Dunderdale GJ, England MW, Hozumi A (2017) Oil/water separation techniques:
a review of recent progresses and future directions. J Mater Chem A 5:16025–16058
70. Xue CH, Chen J, Yin W, Jia ST, Ma JZ (2012) Superhydrophobic conductive textiles with
antibacterial property by coating fibers with silver nanoparticles. Appl Surf Sci 258:2468–
2472
