Formation of Interpolymer Complexes on Polypropylene Textiles via Layer-by-Layer Modification as Revealed by FTIR Method

Authors

  • Dawid STAWSKI Department of Material and Commodity Sciences and Textile Metrology, Technical University of Lodz, Zeromskiego 116, Lodz 90924
  • Joanna SZUMILEWICZ Department of Material and Commodity Sciences and Textile Metrology, Technical University of Lodz, Zeromskiego 116, Lodz 90924

Keywords:

Layer-by-layer technique, FTIR external spectroscopy, textile material, polypropylene, nonwoven

Abstract

Oppositely-charged polyelectrolytes such poly(acrylic acid) and poly(allylamine hydrochloride) have been deposited on a polypropylene nonwoven by the layer-by-layer technique. The complex formation of this modified material has been studied by FTIR spectroscopy. It has been found that external reflectance FTIR is an efficient technique for the identification of non-complexed or complexed carboxylic groups in the modified polypropylene material.

Downloads

Download data is not yet available.

Metrics

Metrics Loading ...

References

G Yang, L Yu, X Chen and P Zhang. Hydrophobic surfaces of spin-assisted layer-by-layer assembled polyelectrolyte multilayers doped with copper nanoparticles and modified by fluoroalkylsilane. Appl. Surf. Sci. 2009; 255, 4097-101.

G Yang, Z Geng, H Ma, Z Wu and P Zhang. Preparation and tribological behavior of Cu-nanoparticle polyelectrolyte multilayers obtained by spin-assisted layer-by-layer assembly. Thin Solid Films 2009; 517, 1778-83.

D Stawski, S Połowiński, L Herczyńska, E Sarna and S Rabiej. Application of the layer-by-layer deposition method to improve the thermal stability of polypropylene non-woven fabric. J. Appl. Polym. Sci. 2012; 123, 1340-7.

D Stawski and C Bellmann. Electrokinetic properties of polypropylene textile fabrics containing deposited layers of polyelectrolytes. Colloid. Surf. A: Physicochem. Engin. Aspects 2009; 345, 191-4.

G Decher. Polyelectrolyte Multilayers, an Overview. In: G Decher and I Schlenoff (eds.). Multilayer Thin Films. Wiley-VCH, Weinheim, 2004, p. 30-1.

X Shi, M Shen and H Möwald. Polyelectrolyte multilayer nanoreactors toward the synthesis of diverse nanostructured materials. Prog. Polym. Sci. 2004; 29, 987-1019.

Y Wang, X Wang, Y Guo, Z Cui, Q Lin, W Yu, L Liu, L Xu, D Zhang and B Yang. Electric-field-induced layer-by-layer fabrication of second order non-linear optical films with high thermal stability. Langmuir 2004; 20, 8952-4.

S Dubas, L Limsavarn, C Iamsamai and P Potiyaray. Assembly of polyelectrolyte multilayers on nylon fibres. J. Appl. Polym. Sci. 2006; 101, 3286-90.

S Dubas, E Chutchawalkulchai, S Egkasit, C Iamsamai and P Potiyaray. Deposition of polyelectrolyte multilayers to improve the color fastness of silk. Tex. Res. J. 2007; 77, 437-41.

Z Lin, S Renneckar and D Hindman. Nanocomposite-based lignocellulosic fibres. 1. Thermal stability of modified fibres with clay-polyelectrolyte multilayers. Cellulose 2008; 15, 333-46.

S Zhu and D Hirt. Hydrophilization of polypropylene films by using migratory additives. J. Vinyl Addit. Techn. 2007; 13, 57-64.

J Harris, P DeRose and M Bruening. Synthesis of passivating nylon-like coatings through cross-linking of ultrathin polyelectrolyte films. J. Am. Chem. Soc. 1999; 121, 1978-9.

S Połowiński. Deposition of polymer complex layers onto nonwoven textiles. J. Appl. Polym. Sci. 2007; 103, 1700-5.

J Bucheńska. Polypropylene fibres grafted with poly (acrylic acid). J. Appl. Polym. Sci. 2002; 83, 2295-9.

Downloads

Published

2012-03-03

How to Cite

STAWSKI, D., & SZUMILEWICZ, J. (2012). Formation of Interpolymer Complexes on Polypropylene Textiles via Layer-by-Layer Modification as Revealed by FTIR Method. Walailak Journal of Science and Technology (WJST), 9(2), 165–171. Retrieved from https://wjst.wu.ac.th/index.php/wjst/article/view/205