Abstract
Antistatic fibers or conductive fibers can be obtained from formation of a metal conductive layer, for example silver, on the surface of polymeric fibers through a redox reaction. However, in the process of fabricating silver-polymer conductive fibers, the binding force between silver and the polymeric fiber matrix is too weak and the poor weather resistance greatly affects the performance of the conductive fibers. This work aims to synthesize composite conductive layers of polyaniline (PANi)-silver coated on polyester fibers to prepare conductive polymeric fibers, in order to improve the combining ability between the conductive layers and the fiber matrix. The morphology, thermostability, mechanical properties, washing resistance and corrosion resistance of the resultant fibers obtained from different synthesis conditions were characterized. Batch experimental results showed that the concentration of the reagent and the reaction time could affect the resistance of the PANi-silver coated conductive fibers. The results also demonstrated that the PANi-silver composite conductive fibers have better properties than those of the silver-polymer conductive fibers.
Acknowledgements
This work was supported by the China Postdoctoral Science Foundation (2017M611696), Postdoctoral Science Foundation of Jiangsu Province (1701012B), Program of Study Abroad for Young Scholar sponsored by the Jiangsu Education Department and the Top-notch Academic Programs Project of Jiangsu Higher Education Institutions (PPZY2015B178).
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©2019 Walter de Gruyter GmbH, Berlin/Boston
Articles in the same Issue
- Frontmatter
- Material properties
- Thermo-oxidative and thermal degradation kinetics of silica/polymethyl methacrylate composites with electrostatic interaction phase interfaces
- Study of the rheology and foaming processes of poly(vinyl chloride) plastisols with different foaming agents
- The non-isothermal crystallization behavior of polyamide 6 and polyamide 6/HDPE/MAH/L-101 composites
- Preparation and assembly
- Preparation and properties of biodegradable polymer/nano-hydroxyapatite bioceramic scaffold for spongy bone regeneration
- Properties of EPDM/PP thermoplastic vulcanizates produced by an intermeshing-type internal mixer comparing with a co-rotating twin-screw extruder
- Applications and characterization of silicalite-1/polydimethylsiloxane composite membranes for the pervaporation of a model solution and fermentation broth
- Electroless plate of polyaniline-silver composite layer on polyester fibers
- Surface modification of polymeric flat sheet membranes by adding oligomeric fluoroalcohol
- Engineering and processing
- Processing polymer nanocomposites with natural additives for medical applications
- Dissolution improvement of an active pharmaceutical ingredient in a polymer melt by hot melt extrusion
- Determination of the fundamental dimension development in building direction for laser-sintered parts
Articles in the same Issue
- Frontmatter
- Material properties
- Thermo-oxidative and thermal degradation kinetics of silica/polymethyl methacrylate composites with electrostatic interaction phase interfaces
- Study of the rheology and foaming processes of poly(vinyl chloride) plastisols with different foaming agents
- The non-isothermal crystallization behavior of polyamide 6 and polyamide 6/HDPE/MAH/L-101 composites
- Preparation and assembly
- Preparation and properties of biodegradable polymer/nano-hydroxyapatite bioceramic scaffold for spongy bone regeneration
- Properties of EPDM/PP thermoplastic vulcanizates produced by an intermeshing-type internal mixer comparing with a co-rotating twin-screw extruder
- Applications and characterization of silicalite-1/polydimethylsiloxane composite membranes for the pervaporation of a model solution and fermentation broth
- Electroless plate of polyaniline-silver composite layer on polyester fibers
- Surface modification of polymeric flat sheet membranes by adding oligomeric fluoroalcohol
- Engineering and processing
- Processing polymer nanocomposites with natural additives for medical applications
- Dissolution improvement of an active pharmaceutical ingredient in a polymer melt by hot melt extrusion
- Determination of the fundamental dimension development in building direction for laser-sintered parts