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10.6.5 REFERENCES

10.6.5  REFERENCES
1. ObservatoryNANO FP7 Project, (a) Textile S&T Report N°1, AIRI/Nanotec IT, 2009, (http://www.observatorynano.eu/project/filesystem/files/

TS10_Textiles_Report_May_2009_Final. pdf); and (b) Textile Market Report, Bax & Willems Consulting Venturing, 2009.
2. Euratex – The EU-27 Textile & Clothing Industry in the year 2008 – General assembly 5th of June 2009; Roberta Adinolfi
3.  http://ec.europa.eu/enterprise/sectors/textiles/

index_en.htm
4. Siegfried, B., Nanotextiles: functions, nanoparticles and commercial applications, Semester thesis in the frame of Nanosafe Textiles Project, TVS Textilverband and Empa, 2007; and Wong, Y.W.H., Yuen, C.W.M., Leung, M.Y.S., Ku, S.K.A., Lam, H.L.I., Selected applications of nanotechnology in textiles; AUTEX Research Journal, 2006, Vol 6, N°1. http://www.autexrj.org/No1-2006/0191.pdf
5. Hipler V.C and P. Elsner Biofunctional textiles. Karger Editor, Basel, 2006
6. Elsner P., Hatch K., Wigger-Alberti W.. Textiles and the skin. Karger Editor, Basel, 2003
7. Morganti P, Chen HD, Gao HX, Li Y, et al. Nanoscience challenging cosmetics, healthy food and biotextiles. Söfw Journal 2009 135 (4): 2-7
8. Wollina U., Heide M., Müller-Litri W., Obenauf D., Ash J.. Functional Textiles in Prevention of Chronic Wounds, Wound Healing and Tissue Engineering. In: Textiles and the skin (P. Elsner, K. Hatch and W. Wigger-Alberti Eds) 2003, Karger Editor, Basel, pp. 82-97
9. Hegemann, D., M.M. Hossain, and D.J. Balazs, Nanostructured plasma coatings to obtain multifunctional textile surfaces. Progress in Organic Coatings, 2007. 58(2-3): p. 237-240.
10. Mahltig, B., H. Haufe, and H. Bottcher, Functionalisation of textiles by inorganic sol-gel coatings. Journal of Materials Chemistry, 2005. 15(41): p. 4385-4398.
11. Daoud, W.A. and J.H. Xin, Nucleation and growth of anatase crystallites on cotton fabrics at low temperatures. Journal of the American Ceramic Society, 2004. 87(5): p. 953-955.
12. Qi, K.H., et al., Self-cleaning cotton. Journal of Materials Chemistry, 2006. 16(47):. 4567-4574.
13. Bozzi, A., T. Yuranova, and J. Kiwi, Self-cleaning of wool-polyamide and polyester textiles by TiO2-rutile modification under daylight irradiation at ambient temperature. Journal of Photochemistry and Photobiology a-Chemistry, 2005. 172(1): p. 27-34.
14. Daoud, W.A. and J.H. Xin, Low temperature sol-gel processed photocatalytic titania coating. Journal of Sol-Gel Science and Technology, 2004. 29(1): p. 25-29.
15. Szymanowski, H., et al., Plasma enhanced CVD deposition of titanium oxide for biomedical applications. Surface & Coatings Technology, 2005. 200(1-4): p. 1036-1040.
16. Daoud, W.A., J.H. Xin, and Y.H. Zhang, Surface functionalization of cellulose fibers with titanium dioxide nanoparticles and their combined bactericidal activities. Surface Science, 2005. 599(1-3): p. 69-75.
17. Yeo, S.Y., H.J. Lee, and S.H. Jeong, Preparation of nanocomposite fibers for permanent antibacterial effect. Journal of Materials Science, 2003. 38(10): p. 2143-2147.
18. Yuranova, T., et al., Performance and characterization of Ag-cotton and Ag/TiO2 loaded textiles during the abatement of E-coli. Journal of Photochemistry and Photobiology a-Chemistry, 2006. 181(2-3): p. 363-369.
19. Lee, H.J., S.Y. Yeo, and S.H. Jeong, Antibacterial effect of nanosized silver colloidal solution on textile fabrics. Journal of Materials Science, 2003. 38(10): p. 2199-2204.
20. Dubas, S.T., P. Kumlangdudsana, and P. Potiyaraj, Layer-by-layer deposition of antimicrobial silver nanoparticles on textile fibers. Colloids and Surfaces a-Physicochemical and Engineering Aspects, 2006. 289(1-3): p. 105-109.
21. Jeong, S.H., S.Y. Yeo, and S.C. Yi, The effect of filler particle size on the antibacterial properties of compounded polymer/silver fibers. Journal of Materials Science, 2005. 40(20): p. 5407-5411.
22. Vigneshwaran, N., et al., Functional finishing of cotton fabrics using zinc oxide-soluble starch nanocomposites. Nanotechnology, 2006. 17(20): p. 5087-5095.
23. Wang, R.H., et al., The characteristics and photocatalytic activities of silver doped ZnO nanocrystallytes; Appl. Surf. Sci., 2004, 227, 312-317.
24. Ullah, R., Dutta, J., Photocatalytic degradation of organic dyes with manganese-doped ZnO nanoparticles; Journal of Hazardous Materials, 2008, Vol. 156, 1-3, 194-200.
25. Ye, W.J., et al., Novel core-shell particles with poly(n-butyl acrylate) cores and chitosan shells as an antibacterial coating for textiles. Polymer, 2005. 46(23): p. 10538-10543.
26. Morganti P. Leather and textile chemicals: chitin nanofibrils in textiles. Specialty Chemicals Magazine. 2008, 28(9): 26
27. Morganti P. Chitin-nanofibrils in skin treatment. J. appl. Cosmetol. 2009, 27:251-270
28. Morganti P. Use and potential of nanotechnology in cosmetic dermatology: Clinical Cosmetic and Investigational Dermatology 2010, 3: 5-13
29. Havenith G. Clothing and Thermoregulation. In: Textiles and the skin (P. Elsner, K. Hatch and W. Wigger-Alberti Eds) 2003, Karger Editor, Basel, pp. 35-49
30. Wollina U. Abdel-Naser MB, Verma S. skin physiology and textiles consideration of basic interactions. In: Biofunctional Textiles and the Skin. (U.C Hipler, P. Elsner Eds), 2006 Karger Editor, Basel pp. 1-16
31. Liu, Y.Y., et al., Artificial lotus leaf structures from assembling carbon nanotubes and their applications in hydrophobic textiles. Journal of Materials Chemistry, 2007. 17(11): p. 1071-1078.
32. Yu, M., et al., Superhydrophobic cotton fabric coating based on a complex layer of silica nanoparticles and perfluorooctylated quaterny ammonium silane coupling agent. Applied surface science, 2007. 253: p. 3669-3673.
33. Huang, P.Y., Y.C. Chao, and Y.T. Liao, Preparation of fluoroacrylate nanocopolymer by miniemulsion polymerization used in textile finishing. Journal of Applied Polymer Science, 2004. 94(4): p. 1466-1472
34. Kathiervelu, S.S., Applications of nanotechnology in fibre finishing, Synthetic Fibres, 2003, 32, 20-22;
35. Russel, E., nanotechnologies and the shrinking world of textiles, Textile Horizons, 2002, 9/10, 7-9; and http://www.nanosphere.ch/
36. Zhang, J., France, P., Radomysselsky, A., Datta, S. Zhao, J., Ooij, W.V., Hydrophobic cotton fabbric coated by thin nanoparticulate plsms film, Journal of Applied Polymer Science, 2003, 88, 1473- 1481.
37. Ramaratnam, K., et al., Ultrahydrophobic textiles using nanoparticles:lotus approach; Journal Engineered Fibers and Fabrics, 2008, Vol. 3, N°4
38. Krogman, K.C., et al., Automated process for improved uniformity and versatility of layer-by-layer deposition. Langmuir, 2007. 23(6): p. 3137-3141.
39. Saito, M., Antibacterial, Deionizing, and UV-absorbing materials obtained with Zinc Oxide coated fabrics, Journal of Coated Fabrics, 1993, 23, 150-164.
40. Xiong, M.N., et al., Preparation and characterization of poly(styrenebutyacrylate) Latex/Nano-ZnO nanocomposites, Journal of Applied Polymer Science, 2003, 90, 1923-1931.
41. Vigneshwaran, N. Nanotechnology finishing in textiles 2007 26.10.2006
42. Xin, J.H., Daoud, W.A., Kong, Y.Y., A new approach to UV-blocking treatment for cottonfabrics, Textile Research Journal, 2004, 74, 97-100.
43. Burniston, N., Bygott, C., Stratton, J., Nano-Technology Meets Titanium Dioxide, Surface Coatings International, Part A, 2004, 179, 814.
44. Biagini G., Zizzi A., Giantomassi F., Orlando F., Lucarini G., Mattioli Belmonte M.,
Tucci M.G. and Morganti P. Cutaneous Absorption of Nanostructured Chitin Associated with Natural Synergistic Molecules (Lutein) J. Appl. Cosmetol 2008 26:69-80
45. Chang, T.E., et al., Microscopic mechanism of reinforcement in single wall carbon nanotube/polypropylene nanocomposites. Polymer, 2005. 46(2): p. 439-444.
46. Hagenmueller, R., et al., Production and characterization of Polymer Nanocomposites with Highly Aligned Single Walled Carbon Nanotubes. Journal of nanoscience and nanotechnology, 2003. 3(1-2): p. 105-110.
47. Dalton, A.B., et al., Continuous carbon nanotube composite fibers: properties, potential applications, and problems. Journal of Materials Chemistry, 2004. 14(1): p. 1-3
48. Kalarikkal, S.G., Sankar, B.V, Ifju, P.G., Effect of Cryogenic Temperature on the Fracture Toughness of Graphite/Epoxy Composites. Journal of Engineering Materials and Technology, 2006,128(2): p. 151-157.
49. Miaudet, P., et al., Hot-drawing of single and multiwall carbon nanotube fibers for high toughness and alignment, Nano Letters, 2005, 5(11), 2212-2215.
50. Hecht, D.S., L. Hu, and G. Gruner, Electronic properties of carbon nanotube/fabric composites. Current Applied Physics, 2007. 7(1), 60-63.
51. Haug S, Roll A, Schmid-Grendelmeier p, Johansen P. et al. Coated textiles in the treatment of atopic dermatitis. In: Biofunctional Textiles and the Skin. (U.C Hipler, P. Elsner Eds), 2006 Karger Editor, Basel pp. 144-151
52. Yadav, A., et al., Functional finishing in cotton fabrics using zinc oxid nanoparticles. Bull. Mat. Sci., 2006, 29(6), 641-645.
53. Aspen Aerogels Inc. Northborough, MA 01532 (USA); http://www.aerogel.com; info@aerogel.com
54. Nanogel Aerogel Insulation. Cabot Corporation, Two Seaport Lane ,Suite 1300, Boston, MA 02210, http://www.cabot-corp.com/Aerogel
55. Dong, W.G., Huang, G., Research on properties on nanopropylene/TiO2 composite fiber, Journal of Textile Research, 2002, 23, 22-23.
56. Zhou, Z.W., Chu, L.S., Tang, W.M., Gu, L.X., Studies on the antistatic mechanism of tetrapod-shaped zinc oxide whisker, Journal of Electrostatics, 2003, 57, 347-354.
57. Wu, Y. et al., Preparation and application of novel fabric finishing agent containing nano ATO, Journal of Functional Polymers, 2002, 25, 43-47
58. Lübben, J., Funktionale Fasern und Textilien. Tec21: Fachzeitschrift für Architektur, Ingenieurwesen und Umwelt, 2005,41: p. 10-13.
59. Hwang, J., J. Muth, and T. Ghosh, Electrical and mechanical properties of carbon-black-filled, electrospun nanocomposite fiber webs. Journal of Applied Polymer Science, 2007. 104(4): p. 2410-2417.
60. Wei, Q.F., et al., Surface characterization of functional nanostructures sputtered on fiber substrates. Surface & Coatings Technology, 2006. 201(3-4): p. 1821-1826.
61. Spinks, G.M., et al., Carbon-nanotube-reinforced polyaniline fibers for high-strength artificial muscles. Advanced Materials, 2006. 18(5): p. 637-+.
62. Mottaghitalab, V., G.M. Spinks, and G.G. Wallace, The influence of carbon nanotubes on mechanical and electrical properties of polyaniline fibers. Synthetic Metals, 2005. 152(1-3): p. 77-80.
63. Spinks, G.M., et al., Actuation behaviour of layered composites of polyaniline, carbon nanotubes and polypyrrole. Synthetic Metals, 2005. 151(1): p. 85-91.
64. Foitzik, R.C., A. Kaynak, and F.M. Pfeffer, Application of soluble poly (3-alkylpyrrole) polymers on textiles. Synthetic Metals, 2006. 156(7-8): p. 637-642.
65. Dall'Acqua, L., et al., Vapor phase polymerisation of pyrrole on cellulose-based textile substrates. Synthetic Metals, 2006. 156(5-6): p. 379-386.
66. Armes, S.P., et al., Morphology and structure of conducting polymers. Langmuir, 1991. 7(7), 1447-1452.
67. Persico, P., C. Carfagna, and P. Musto, Nanocomposite fibers for cosmetotextile applications. Macromolecular Symposia, 2006. 234: p. 147-155.
68. Hauser, P., Advances and trends in textile wet processing chemicals, JTATM, Vol.4, 1, 2006;
69. Anderson, K., Innovate or Disintegrate: the latest in textile finishes, Techexchange, [TC]2 (2006); www.techexchange.com)
70. Morganti P., Fabrizi G., Palombo P., Palombo M., et al Chitin-nanofibrils: a new active cosmetic carrier. J. Appl. Cosmetol 2008, 26: 105-120
71. Textiles in Sport ;Edited by R Shishoo, Woodhead Textiles Series No. 45, August 2005.
72. Zhou, X., Project Report ECG653, Fall 2008 zhouxinan0129@gmail.com)
73. Project on Emerging Nanotechnologies. Woodrow Wilson International Center for Scholars and the Pew Charitable Trusts - www.nanotechproject.org
74. Nanotechnology: Small is beautiful but is it safe? Joint ANEC/BEUC Position; June 2009; www.beuc.eu; www.anec.eu
75. Ricci G, Patrizi A, Bellini F, Medri A. Use of textiles. (U.C Hipler, P. Elsner Eds), 2006 Karger Editor, Basel pp. 127-143
76. Sun, G., Halamine Chemistry and it s applications in biological and chemical protective textiles, in Presentation on the NanoEurope Conference, St.Gallen. 2006, Division of Textiles and Clothing, University of California, USA.
77. Cliver, D.O., Biocidal effects of silver: Contract NAS 9-9300 Final Technical Report, University of Wisconsin.
78. Lee, H.J., Jeong, S.H., Text. Res. J., 2004 , 74, 442-447.
79. Roszek, B., De Jong, W.H., Geertsma, R.E., RIVM Report 265001001/2005; nanotechnology in medical applications: state of the art in materials and devices.
80. Wright, J.B., Lam, k.,Hansen, D.,Burrell, R,E., Efficacy of topical silver against fungal burn wound pathogens; Am. J. Infect. Control, 1999, 27, 344-350.
81. Yin, H.Q., Langford, R., Burrell, R.E., Comparative evaluation of the antimicrobial activity of Acticoat antimicrobial barrier dressing, J. Burn Care Rehabil., 1999, 20, 195-200.
82. Tredget, E.E., Shankowsky, H.A., Groeneveld, A., Burrell, R., A matched-pair randomized study evaluating the efficacy and safety of Acticat silver-coated dressing for treatment of burn wounds; J. Burn Care Rehabil., 1998, 19, 531-537.
83. Sibbald, R.G., Browns, A.C., Coutts, P., Queen, D., Screening evaluation of an ionized nanocrystalline silver dressing in chronic wound care; Ostomy Wound Management, 2001, 47, 38-43.
84. Khil, M.S., Cha, D.I., Kim. H.Y., Kim, I.S., Bhattarai, N., Electrospun nanofibrous polyurethane membrane as wound dressing; J. Iomed, Mater. Res. B. Appl. Biomater., 2003, 67, 675-679.
85. Min, B.M., Lee, G., Kim, S.H., Nam, Y.S., Lee, T.S., Park, W.H., Electrospinning of silk fibroin nanofibers and its effect on the adhesion and spreading of normal human keratinocytes and fibroblasts in vitro; Biomaterials, 2004, 25, 1289-1297.
86. Coyle, S., Wu, Y., Lau, K-T., DeRossi, D., Wallace, G., Diamond, D., Smart nanotextiles: a review of materilas and applications; MRS Bulletin, 32, May 2007, 434-442.
87. Engin, M., Demirel, A., Engin, E.Z., Fedakar, M., Measurement, 2005, 37, 137.
88. Axisa, F., et al., IEEE Trans. Inf.Technol. Biomed., 2005, 9, 325.
89. http://peratech.com/medical.php; http://peratech.com/sport.php
90. Smart Textiles Salon (Gent, Belgium, 25 September 2009) http://www.smarttextilessalon.com/
91. Pigos, G., Sport J., 2006, 9, 1.
92. Brady, S., Coyle, S., Diamond, D., Mater. Res. Soc. Symp. Proc. 920; Tao, X., Troster, G., Diamond, D., Eds. (MRS, Warrendale) 2006, 85-90.
93. Carpi, F., De Rossi, D., IEEE Trans. Inf. Technol. Biomed., 2005, 9, 295.
94. Munro, B.J., Steele, J.R., Campbell, T.E., Wallace, G.G., Stud. Health Technol. Informatics; 2004, 108, 271.
95. Xue, P., Tao, X., Leung, G., Zhang, H. Wearable Electronics and Photonics; Tao, X., Ed., (CRC Press) 2005, 81-104.
96. Dunne, L.E., Walsh, P. Smyth, B. Caulfield, B., Proc. 10th IEEE Int. Symp. Wearable Computers (IEEE Computer Society) 2006, 65.68.
97. Brady, S., et al., Body Sensor Networks, Paradiso, Yang, Eds., (IEEE Computer Society) 2006, 31-34.
98. BIOTEX Project; htpp://www.biotex-eu.com.
99. Paradiso, R., Loriga, G., Taccini, N., IEEE Trans. Inf. Technol. Biomol., 2005, 9, 337.
100. Paradiso, R., Belloc, C., Loriga, G., Taccini, N., Personalised Health Management Systems, C. Nugent, P.J. McCullogh, E. McAdams, A Lymberis, Eds. (IOS Press, Amsterdam, 2005, 9-16.
101. Brady, S., Diamond, D., Lau, K.T., Sens. Actuators, A, 2005, 119, 398.
102. Tognetti, A., et al., J. Neuroeng. Rehabil., 2005, 2, 8
103. http://www.ita.rwth-aachen.de/ita/
104. http://www.itv-denkendorf.de, http://www.itvd.uni-stuttgart.de/
105. Bulletin of Euratex n° 1/2009 - Situation in the textile and clothing industry in the year 2008 and outlook for 2009.
106. An analysis of medical textiles – G Thamotharan Report of the Expert Committee on technical textiles volume I.
107. Development of Medical Textile Market, Robert Czajka, FIBRES & TEXTILES in eastern Europe, January/March 2005 Vol. 13 No. 1(49)
108. Medical textiles: Proceedings of the 2nd International Conference, 24th & 25th August 1999, Bolton Institute, UK; Edited by S C Anand, University of Bolton, UK; Woodhead Textiles Series No. 17
109. http://www.just-style.com/store/productprint.aspx?id=78232
110. OutdoorNews, European OutdoorJuly 2009
111. http://www.bloomberg.com/apps/news?pid=20601205&sid=aT5gVupzb1OI
112. http://www.wikinvest.com/stock/Adidas_AG_(ADDYY)#_note-27
113. http://www.ccfgroup.com/newscenter/newsview.php?Class_ID=800000&Info_ID=20100125006
114. http://www.npd.com/press/releases/press_090701.html
115. http://specialtyfabricsreview.com/articles/

0210_f1_industry.html
116. Athletic apparel: A market opportunity; Cotton incorporated supply chain insights, May 2009
117. M Radetic, P Jovanovic, N Puac and Z Lj Petrovic Environmental impact of plasma application to textiles; J. Phys. Conference Series 71,012017 (2007)
118. Press information Hohenstein Institues- Market launch of the Hohenstein Quality Label for “Nanotechnology”- Dönnigheim, September 2005


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