Advanced Electrode Coatings Based on Poly-N-Phenylanthranilic Acid Composites with Reduced Graphene Oxide for Supercapacitors

Перспективные электродные покрытия на основе композитов поли-N-фенилантраниловой кислоты с восстановленным оксидом графена для суперконденсаторов
Sveta Zhiraslanovna Ozkan, Л. И. Ткаченко, О. Н. Ефимов, Г. П. Карпачева, Г. В. Николаева, Aleksandr Ivanovich Kostev, Н. Н. Дремова, Е. Н. Кабачков
2023-04-15

in situ oxidative polymerizationpoly-N-phenylanthranilic acid compositesreduced graphene oxidespecific electrochemical capacitancesupercapacitors
The electrochemical behavior of new electrode materials based on poly-N-phenylanthranilic acid (P-N-PAA) composites with reduced graphene oxide (RGO) was studied for the first time. Two methods of obtaining RGO/P-N-PAA composites were suggested. Hybrid materials were synthesized via in situ oxidative polymerization of N-phenylanthranilic acid (N-PAA) in the presence of graphene oxide (GO) (RGO/P-N-PAA-1), as well as from a P-N-PAA solution in DMF containing GO (RGO/P-N-PAA-2). GO post-reduction in the RGO/P-N-PAA composites was carried out under IR heating. Hybrid electrodes are electroactive layers of RGO/P-N-PAA composites stable suspensions in formic acid (FA) deposited on the glassy carbon (GC) and anodized graphite foil (AGF) surfaces. The roughened surface of the AGF flexible strips provides good adhesion of the electroactive coatings. Specific electrochemical capacitances of AGF-based electrodes depend on the method for the production of electroactive coatings and reach 268, 184, 111 F∙g−1 (RGO/P-N-PAA-1) and 407, 321, 255 F∙g−1 (RGO/P-N-PAA-2.1) at 0.5, 1.5, 3.0 mA·cm−2 in an aprotic electrolyte. Specific weight capacitance values of IR-heated composite coatings decrease as compared to capacitance values of primer coatings and amount to 216, 145, 78 F∙g−1 (RGO/P-N-PAA-1IR) and 377, 291, 200 F∙g−1 (RGO/P-N-PAA-2.1IR). With a decrease in the weight of the applied coating, the specific electrochemical capacitance of the electrodes increases to 752, 524, 329 F∙g−1 (AGF/RGO/P-N-PAA-2.1) and 691, 455, 255 F∙g−1 (AGF/RGO/P-N-PAA-1IR).
1
AGF electrodes with RGO/P-N-PAA-2.1 coatings achieved specific capacitances of 407, 321, and 255 F·g−1 at 0.5, 1.5, and 3.0 mA·cm−2, respectively.
2
Infrared post-reduction decreased capacitance relative to primer coatings, with RGO/P-N-PAA-2.1IR reaching 377, 291, and 200 F·g−1 at the same current densities.
3
RGO/P-N-PAA composite coatings formed stable formic-acid suspensions and adhered effectively to anodized graphite foil because of its roughened flexible surface.
4
Reducing the applied coating mass increased specific capacitance, reaching 752, 524, and 329 F·g−1 for AGF/RGO/P-N-PAA-2.1.
5
Two fabrication routes were developed for RGO/poly-N-phenylanthranilic acid composites: in situ oxidative polymerization and solution processing in DMF.

RGO/P-N-PAA composite electroactive coatings on anodized graphite foil and glassy carbon electrodes for supercapacitors

Electrochemical behavior and specific capacitance of the composite-coated electrodes as functions of coating preparation method, IR post-reduction, coating mass, and current density

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Publication Date
2023-04-15
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Authors
Sveta Zhiraslanovna Ozkan
Л. И. Ткаченко
О. Н. Ефимов
Г. П. Карпачева
Г. В. Николаева
Aleksandr Ivanovich Kostev
Н. Н. Дремова
Е. Н. Кабачков
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