Journal Article

·2022

A new approach to prepare N‐/S‐doped free‐standing graphene oxides for vanadium redox flow battery

M. Giray Ersozoglu , Hürmüs Gürsu YTU , Metin Gençten YTU , A. Sezai̇ Saraç YTU , Yücel Şahin YTU

International Journal of Energy Research

Abstract

Nitrogen and sulfur heteroatom-doped graphene oxide (GO) electrodes were produced with a fast, eco-friendly, and, more significantly, functional group-controlled technique, chronoamperometry. N-doped GOs (N-GOs) and S-doped GOs (S-GOs) as binder-free positive electrodes were designed to boost the performance of vanadium redox flow battery as the positive electrodes. The prepared as positive electrode materials for vanadium redox battery were characterized with cyclic voltammetry, Raman spectroscopy, X-ray photoelectron spectroscopy, scanning electron microscopy, and energy-dispersive X-ray spectroscopy. The electrochemical performance of the prepared GO electrodes was investigated through cyclic voltammetry and electrochemical impedance spectroscopy. While S-GOs containing S, and O-containing functional groups were shown high electrical conductivity and stability, N-GOs, containing N and O-containing functional groups were slightly lower electrochemical performance. Among the high-performance electrodes, the S-GO21 synthesized by applying +2.1 V constant potential via the chronoamperometry method exhibited the best performance as the positive electrode for vanadium redox battery. This electrochemical activity result can be correlated to the more S- and O-containing functional groups on the surface of GO.

Keywords

Cyclic voltammetry Chronoamperometry Vanadium Dielectric spectroscopy Flow battery Graphene Redox Electrode Electrochemistry Chemistry Materials science Inorganic chemistry Nanotechnology Physical chemistry Electrolyte

Subject Areas

Advanced battery technologies research ·Electrical and Electronic Engineering ·Physical Sciences
Supercapacitor Materials and Fabrication ·Electronic, Optical and Magnetic Materials ·Physical Sciences
Advancements in Battery Materials ·Electrical and Electronic Engineering ·Physical Sciences

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