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Please use this identifier to cite or link to this item: https://dspace.ffh.bg.ac.rs/handle/123456789/550
Title: Tailored porosity development in carbons via Zn<sup>2+</sup> monodispersion: Fitting supercapacitors
Authors: Rupar, Jelena
Bajuk-Bogdanović, Danica 
Milojević-Rakić, Maja 
Krstić, Jugoslav
Upadhyay, Kush
Gavrilov, Nemanja 
Janošević Ležaić, Aleksandra
Keywords: Alginate;Capacitance;Monodispersed Zn;N–doped carbon;Porosity development
Issue Date: 1-Apr-2022
Journal: Microporous and Mesoporous Materials
Abstract: 
Here, we propose a novel, electrochemical preparation of in situ N-doped alginate-based carbon precursors with monodispersed zinc ions. Obtained carbons were evaluated by spectroscopic (FTIR, Raman and XPS), textural (N2 physisorption), microscopic (TEM) and elemental (SEM-EDS) descriptors to establish their distinctive features originating from different synthetic procedures. Carbons characteristics were assessed in view of several carbonization temperatures applied for their preparation from alginate precursors, and individual and joint effect of zinc and nitrogen on the precursor. Obtained Zn monodispersion, emphasizes the significance of electrochemical preparation, allowing increasing temperature to induce changes from its ionic form to carbonate and oxide, while at 800 °C ZnO further reduces and evaporates. Since homogeneously dispersed Zn species acts as porosity evolving agent during carbonization, a substantial surface area is developed, in the range 718–1056 m2 g−1. Textural properties revealed that the use of rivanol as an N-doping agent shields carbon scaffold from porosity overdevelopment. The alginate-based carbons are probed as electrode materials for supercapacitors and surface/textural properties connected to electrochemical results. Controlled electrochemical dispersion of zinc and, in situ N–doping with rivanol, developed a bio-based material of excellent capacitance (265 F g−1 @5 mV s−1) and stability. This study reflects key features in material design necessary for engineering upcoming supercapacitors.
URI: https://dspace.ffh.bg.ac.rs/handle/123456789/550
ISSN: 1387-1811
DOI: 10.1016/j.micromeso.2022.111790
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University of Belgrade
Faculty of Physical Chemistry
Studentski trg 12-16
11158 Belgrade 118
PAC 105305
SERBIA
University of Belgrade Faculty of Physical Chemistry