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LIBRIS Formathandbok  (Information om MARC21)
FältnamnIndikatorerMetadata
00003755naa a2200445 4500
001oai:DiVA.org:hb-1336
003SwePub
008151113s2013 | |||||||||||000 ||eng|
024a https://urn.kb.se/resolve?urn=urn:nbn:se:hb:diva-13362 URI
024a https://doi.org/10.1002/pat.30732 DOI
040 a (SwePub)hb
041 a engb eng
042 9 SwePub
072 7a ref2 swepub-contenttype
072 7a art2 swepub-publicationtype
100a Bashir, Tariqu Högskolan i Borås,Institutionen Ingenjörshögskolan,Polymer Group4 aut0 (Swepub:hb)tab
2451 0a OCVD polymerization of PEDOT :b effect of pre-treatment steps on PEDOT-coated conductive fibers and a morphological study of PEDOT distribution on textile yarns
264 c 2012-09-07
264 1b John Wiley & Sons,c 2013
338 a print2 rdacarrier
520 a The functionalization of textile fibers with intrinsically conductive polymers has become a prominent research area throughout the world. A number of coating techniques have already been utilized and optimized to get the uniform layers of conductive polymers on the surface of different substrates. In our previous study, we produced poly(3,4-ethylenedioxythiophene) (PEDOT)-coated conductive fibers by employing oxidative chemical vapor deposition (oCVD) technique. This paper describes the effects of pre-treatment steps, such as surface treatment of textile fibers with organic solvents, drying of oxidant-enriched fibers at variable temperatures and time, and oxidant type on the electrical, mechanical, and thermal properties of PEDOT-coated conductive fibers. Two well-known oxidants, ferric(III)chloride and ferric(III)p-toluenesulfonate (FepTS), were studied, and then their results were compared. In order to verify the PEDOT-coated layer and, to some extent, its impregnation inside the viscose yarns, a morphological study was carried out by using the attenuated total reflectance Fourier transform infrared spectroscopic imaging technique and computed tomography scanning across the obtained conductive fibers. Differential scanning calorimetric and thermogravimetric analysis were utilized to investigate the thermal properties and the contents of PEDOT in PEDOT-coated fibers. The mechanical properties of conductive fibers were evaluated by tensile strength testing of produced fibers. Effects of all of these pre-treatment steps on electrical properties were analyzed with Kiethly picoammeter. This study cannot only be exploited to improve the properties of conductive fibers but also to optimize the oCVD process for the production of conductive textile fibers by coating with different conjugated polymers.
650 7a TEKNIK OCH TEKNOLOGIERx Kemiteknik0 (SwePub)2042 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Chemical Engineering0 (SwePub)2042 hsv//eng
653 a conductive fibers
653 a OCVD
653 a pre-treatment steps
653 a PEDOT coating
653 a surface morphology
653 a Organic Electronics
653 a Smart Textiles
653 a Resource Recovery
653 a Resursåtervinning
700a Ali, Majid4 aut
700a Cho, Sung-Woo4 aut
700a Persson, Nils-Kristeru Högskolan i Borås,Institutionen Textilhögskolan,Polymer Group4 aut0 (Swepub:hb)nkp
700a Skrifvars, Mikaelu Högskolan i Borås,Institutionen Ingenjörshögskolan,Polymer Group4 aut0 (Swepub:hb)msk
710a Högskolan i Boråsb Institutionen Ingenjörshögskolan4 org
773t Polymers for Advanced Technologiesd : John Wiley & Sonsg 24:2, s. 210-219q 24:2<210-219x 1042-7147x 1099-1581
8564 8u https://urn.kb.se/resolve?urn=urn:nbn:se:hb:diva-1336
8564 8u https://doi.org/10.1002/pat.3073

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