DSpace Repository

Oligoether Ester-Functionalized ProDOT Copolymers on Si/Monolayer Graphene as Capacitive Thin Film Electrodes

Show simple item record

dc.contributor.author Karazehir, Tolga
dc.contributor.author Sarac, Baran
dc.contributor.author Gilsing, Hans-Detlev
dc.contributor.author Eckert, Juergen
dc.contributor.author Sarac, A. Sezai
dc.date.accessioned 2023-01-17T11:12:23Z
dc.date.available 2023-01-17T11:12:23Z
dc.date.issued 2020-03
dc.identifier.citation Karazehir, T., Sarac, B., Gilsing, H.-D., Eckert, J., & Sarac, A. S. (2020). Oligoether Ester-Functionalized ProDOT Copolymers on Si/Monolayer Graphene as Capacitive Thin Film Electrodes. Journal of The Electrochemical Society, 167(7), 070543. https://doi.org/10.1149/1945-7111/ab7f85 tr_TR
dc.identifier.issn 0013-4651
dc.identifier.issn 1945-7111
dc.identifier.uri http://openacccess.atu.edu.tr:8080/xmlui/handle/123456789/4135
dc.identifier.uri http://dx.doi.org/10.1149/1945-7111/ab7f85
dc.description WOS indeksli yayınlar koleksiyonu. / WOS indexed publications collection. tr_TR
dc.description.abstract In this study, electrochemical polymerization of 3,4-propylenedioxythiophene (ProDOT 1), ProDOT bearing oligoether ester (ProDOT-EO-ester 2) and their copolymerization onto homogeneously CVD coated nano-graphene/Si support is realized to attain graphene/ProDOT based copolymer hybrid nanostructures. By introducing oligoether side chain to ProDOT backbone and using different [ProDOT]/[ProDOT-EO-ester] molar ratios ensures a considerable decrease in oxidation potential of polymer allowing tunable properties to copolymers revealing improvement electrochemical capacitance and electrochemical activity which are clearly reflected by the experimental results. Capacitive behavior of copolymers is determined by electrochemical impedance spectroscopy, cyclic voltammetry. Moreover, The structural, morphological and spectroscopic characterization of the copolymers is investigated by XRD, AFM, SEM, EDX, FTIR, and Raman, respectively. By the increase of ProDOT in the copolymer composition, the higher dopant concentration is attained suggesting an enhanced conductivity agree well with the impedance and CV results, where the copolymerization of ProDOT 1 and ProDOT-EO-ester 2 in equal molarity results in the highest specific capacitance and redox activity. The adopted equivalent circuit model for polymers is in good agreement with the experimental data of impedance. Due to the difference in conjugated structure between ProDOT and ProDOT-EO-ester by the presence of the EO-ester group leads to a decrease in charge transfer resistance with increasing mole fraction of ProDOT-EO-ester. The charge transfer resistance of [ProDOT](0)/[ProDOT-EO-ester](0) = 1:1 coated Si/graphene is nearly 51 and 24 times lower value compared to those of PProDOT and P(ProDOT-EO-ester) homopolymers coated Si/graphene, respectively, confirming that the copolymerization improves the electron conduction. By Mott-Schottky measurements, increasing mole fraction of ProDOT-EO-ester 2 in copolymer composition results in the alteration of semiconducting behavior. The developed graphene-polymer hybrid electrodes can be a potential candidate for energy storage devices. tr_TR
dc.language.iso en tr_TR
dc.publisher JOURNAL OF THE ELECTROCHEMICAL SOCIETY / ELECTROCHEMICAL SOCIETY INC tr_TR
dc.relation.ispartofseries 2020;Volume: 167 Issue: 7
dc.subject HIGH-PERFORMANCE tr_TR
dc.subject CARBON-FIBER tr_TR
dc.subject ELECTROCHEMICAL CHARACTERIZATION tr_TR
dc.subject SUPERCAPACITOR ELECTRODES tr_TR
dc.subject COMPOSITE-MATERIALS tr_TR
dc.subject NANOROD ARRAYS tr_TR
dc.subject DOUBLE-LAYER tr_TR
dc.subject ELECTROPOLYMERIZATION tr_TR
dc.subject IMPEDANCE tr_TR
dc.subject POLYANILINE tr_TR
dc.title Oligoether Ester-Functionalized ProDOT Copolymers on Si/Monolayer Graphene as Capacitive Thin Film Electrodes tr_TR
dc.type Article tr_TR


Files in this item

Files Size Format View

There are no files associated with this item.

This item appears in the following Collection(s)

Show simple item record

Search DSpace


Advanced Search

Browse

My Account