82
L. J. Rather et al.
146. BMU (Hrsg.) (2011) Verantwortlicher Umgang mit Nanotechnologien. Bericht der Themengruppen der NanoKommission der deutschen Bundesregierung. http://www.bmu.de/service/
publikationen/downloads/details/artikel/ergebnisse-aus-der-zweitennanodialog-phase-2009
147. Glover RD, Miller JM, Hutchison JE (2011) Generation of metal nanoparticles from silver
and copper objects: nanoparticle dynamics on surface and potential sources of nanoparticles
in the environment. ACS Nano 5:8950–8957
148. Limbach LK, Bereiter R, Müller E, Krebs R, Galli R, Stark WJ (2008) Removal of
oxide nanoparticles in a model wastewater treatment plant: influence of agglomeration and
surfactants on clearing efficiency. Environ Sci Technol 42:5828–5833
149. Burkhardt M, Zuleeg S, Kagi R, Eugster J, Boller M, Siegrist H (2010) Verhalten von Nanosilber in Klaranlagen und dessen Einfluss auf die Nitrifikationsleistung von Belebtschlamm.
Umweltwiss Schadst Forsch 22:529–540
150. Nickel C, Hellack B, Gartiser S, Flach F, Schiwy A, Maes H, Schaffer A, Gabsch S,
Stintz M, Erdinger L, Kuhlbusch TAJ (2012) Fate and behaviour of TiO 2 nanomaterials
in the environment, influenced by their shape, size and surface area. UBA-Text 25/2012.
Umweltbundesamt
151. Walser T, Limbach LK, Brogioli R, Erismann E, Flamigni L, Hattendorf B, Juchli M, Krumeich F, Ludwig C, Prikopsky K, Rossier M, Saner D, Sigg A, Hellweg S, Günther D, Stark WJ
(2012) Persistence of engineered nanoparticles in a municipal solid-waste incineration plant.
Nat Nanotechnol 78:520–524
152. Motojima S, Noda Y, Hoshiya S, Hishikawa Y (2003) Electromagnetic wave absorption
property of carbon microcoils in 12–110 GHz region. J Appl Phys 944:2325–2330
153. Rosace G (2015) Radiation protection finishes for textiles. In: Paul R (ed) Functional finishes
for textiles. Woodhead Publishing, pp 487–512
154. Chen HC, Lee KC, Lin JH, Koch M (2007) Fabrication of conductive woven fabric and analysis of electromagnetic shielding via measurement and empirical equation. J Mater Process
Technol 184:124–130
155. Horrocks AR (2011) Flame retardant challenges for textiles and fibres: new chemistry versus
innovatory solutions. Polym Degrad Stab 96:377–392
156. Yang JC, Liao W, Deng SB, Cao ZJ, Wang YZ (2016) Flame retardation of cellulose-rich
fabrics via a simplified layer-by-layer assembly. Carbohyd Polym 151:434–440
157. Soutter W (2012) Nanomaterials for environmentally friendly flame retardants. https://www.
azonano.com/article.aspx?ArticleID=3087
158. Gashti MP, Alimohammadi F, Shamei A (2012) Preparation of water-repellent cellulose fibers
using a polycarboxylic acid/hydrophobic silica nanocomposite coating. Surf Coat Technol
206:3208–3215
159. Carosio F, Laufer G, Alongi J, Camino G, Grunlan JC (2011) Layer-by-layer assembly of
silica-based flame-retardant thin film on PET fabric. Polym Degrad Stabil 96:745–750
160. Yang CQ, Xu L, Li S, Jiang Y (1998) Non-formaldehyde durable press finishing of cotton
fabrics by combining citric acid with polymers of maleic acid. Text Res J 68:457–464
161. Lam Y, Kan C, Yuen C (2010) Effect of concentration of titanium dioxide acting as catalyst
or co-catalyst on the wrinkle-resistant finishing of cotton fabric. Fibers Polym 11:551–558
162. Hebeish A, El-Bisi M, El-Shafei A (2015) Green synthesis of silver nanoparticles and their
application to cotton fabrics. Int J Biol Macromol 72:1384–1390
163. Montazer M, Alimohammadi F, Shamei A, Rahimi MK (2012) Durable antibacterial and
cross-linking cotton with colloidal silver nanoparticles and butane tetracarboxylic acid without
yellowing. Colloids Surf B 89:196–202
164. Atlas RM, Pramer D (1990) Focus on bioremediation. ASM News 56:7–15
165. Chung KT, Stevens SEJ (1993) Degradation of azo dyes by environmental microorganisms
and helminthes. Environ Toxicol Chem 12:2121–2132
166. Wong PK, Yuen PY (1996) Decolorization and degradation of methyl red by Klebsiella
pneumoniae RS-13. Water Res 30:1736–1744
167. Sharma MK, Sobti RC (2000) Rec effect of certain textile dyes in Bacillus subtilis. Mutat Res
465:27–38
L. J. Rather et al.
146. BMU (Hrsg.) (2011) Verantwortlicher Umgang mit Nanotechnologien. Bericht der Themengruppen der NanoKommission der deutschen Bundesregierung. http://www.bmu.de/service/
publikationen/downloads/details/artikel/ergebnisse-aus-der-zweitennanodialog-phase-2009
147. Glover RD, Miller JM, Hutchison JE (2011) Generation of metal nanoparticles from silver
and copper objects: nanoparticle dynamics on surface and potential sources of nanoparticles
in the environment. ACS Nano 5:8950–8957
148. Limbach LK, Bereiter R, Müller E, Krebs R, Galli R, Stark WJ (2008) Removal of
oxide nanoparticles in a model wastewater treatment plant: influence of agglomeration and
surfactants on clearing efficiency. Environ Sci Technol 42:5828–5833
149. Burkhardt M, Zuleeg S, Kagi R, Eugster J, Boller M, Siegrist H (2010) Verhalten von Nanosilber in Klaranlagen und dessen Einfluss auf die Nitrifikationsleistung von Belebtschlamm.
Umweltwiss Schadst Forsch 22:529–540
150. Nickel C, Hellack B, Gartiser S, Flach F, Schiwy A, Maes H, Schaffer A, Gabsch S,
Stintz M, Erdinger L, Kuhlbusch TAJ (2012) Fate and behaviour of TiO 2 nanomaterials
in the environment, influenced by their shape, size and surface area. UBA-Text 25/2012.
Umweltbundesamt
151. Walser T, Limbach LK, Brogioli R, Erismann E, Flamigni L, Hattendorf B, Juchli M, Krumeich F, Ludwig C, Prikopsky K, Rossier M, Saner D, Sigg A, Hellweg S, Günther D, Stark WJ
(2012) Persistence of engineered nanoparticles in a municipal solid-waste incineration plant.
Nat Nanotechnol 78:520–524
152. Motojima S, Noda Y, Hoshiya S, Hishikawa Y (2003) Electromagnetic wave absorption
property of carbon microcoils in 12–110 GHz region. J Appl Phys 944:2325–2330
153. Rosace G (2015) Radiation protection finishes for textiles. In: Paul R (ed) Functional finishes
for textiles. Woodhead Publishing, pp 487–512
154. Chen HC, Lee KC, Lin JH, Koch M (2007) Fabrication of conductive woven fabric and analysis of electromagnetic shielding via measurement and empirical equation. J Mater Process
Technol 184:124–130
155. Horrocks AR (2011) Flame retardant challenges for textiles and fibres: new chemistry versus
innovatory solutions. Polym Degrad Stab 96:377–392
156. Yang JC, Liao W, Deng SB, Cao ZJ, Wang YZ (2016) Flame retardation of cellulose-rich
fabrics via a simplified layer-by-layer assembly. Carbohyd Polym 151:434–440
157. Soutter W (2012) Nanomaterials for environmentally friendly flame retardants. https://www.
azonano.com/article.aspx?ArticleID=3087
158. Gashti MP, Alimohammadi F, Shamei A (2012) Preparation of water-repellent cellulose fibers
using a polycarboxylic acid/hydrophobic silica nanocomposite coating. Surf Coat Technol
206:3208–3215
159. Carosio F, Laufer G, Alongi J, Camino G, Grunlan JC (2011) Layer-by-layer assembly of
silica-based flame-retardant thin film on PET fabric. Polym Degrad Stabil 96:745–750
160. Yang CQ, Xu L, Li S, Jiang Y (1998) Non-formaldehyde durable press finishing of cotton
fabrics by combining citric acid with polymers of maleic acid. Text Res J 68:457–464
161. Lam Y, Kan C, Yuen C (2010) Effect of concentration of titanium dioxide acting as catalyst
or co-catalyst on the wrinkle-resistant finishing of cotton fabric. Fibers Polym 11:551–558
162. Hebeish A, El-Bisi M, El-Shafei A (2015) Green synthesis of silver nanoparticles and their
application to cotton fabrics. Int J Biol Macromol 72:1384–1390
163. Montazer M, Alimohammadi F, Shamei A, Rahimi MK (2012) Durable antibacterial and
cross-linking cotton with colloidal silver nanoparticles and butane tetracarboxylic acid without
yellowing. Colloids Surf B 89:196–202
164. Atlas RM, Pramer D (1990) Focus on bioremediation. ASM News 56:7–15
165. Chung KT, Stevens SEJ (1993) Degradation of azo dyes by environmental microorganisms
and helminthes. Environ Toxicol Chem 12:2121–2132
166. Wong PK, Yuen PY (1996) Decolorization and degradation of methyl red by Klebsiella
pneumoniae RS-13. Water Res 30:1736–1744
167. Sharma MK, Sobti RC (2000) Rec effect of certain textile dyes in Bacillus subtilis. Mutat Res
465:27–38
