2015•ChemElectroChemRequires access

Electrochemical Oxidation of Glassy Carbon Provides Similar Electrochemical Response as Graphene Oxide Prepared by Tour or Hummers Routes

Murilo Santhiago, Camila M. Maroneze, Cecília de Carvalho Castro Silva, Maiuí N. L. Camargo, Lauro T. Kubota

Open publisher page 32 citations

Abstract

Abstract This work presents an in situ route to electrochemically prepare an oxidized carbon surface from glassy carbon electrodes (GCEs), which generates a material with a similar electrochemical response as graphene oxide. The proposed in situ route is fast, simple, environmentally friendly and consists in applying a potential of +1.8 V vs. SCE to a GCE. The oxidized electrode surface (GCEOS) and its subsequent electrochemical reduction (GCEERS) can be accomplished easily and efficiently by electrochemical techniques. GCEOS and GCEERS were characterized by electrochemical, spectroscopic and microscopy techniques, revealing the in situ origin of the material and confirming its chemical similarity to the graphene oxide prepared by the Hummers and Tour methods. The presence of a 2D atomically thick material was not observed, which strongly indicates that the electrochemical response of graphene oxide resides only in the oxygenated functional groups. The remaining oxygenated groups in GCEERS show a drastic cathodic shift of potential (542 mV) for nicotinamide adenine dinucleotide (NADH) electrooxidation.

About this research paper

What this paper is about

Abstract This work presents an in situ route to electrochemically prepare an oxidized carbon surface from glassy carbon electrodes (GCEs), which generates a material with a similar electrochemical response as graphene oxide. The proposed in situ route is fast, simple, environmentally friendly and consists in applying a potential of +1.8 V vs. SCE to a GCE. The oxidized electrode surface (GCEOS) and its subsequent electrochemical reduction (GCEERS) can be accomplished easily and efficiently by electrochemical techniques. GCEOS and GCEERS were characterized by electrochemical, spectroscopic and microscopy techniques, revealing the in situ origin of the material and confirming its chemical similarity to the graphene oxide prepared by the Hummers and Tour methods. The presence of a 2D atomically thick material was not observed, which strongly indicates that the electrochemical response of graphene oxide resides only in the oxygenated functional groups. The remaining oxygenated groups in GCEERS show a drastic cathodic shift of potential (542 mV) for nicotinamide adenine dinucleotide (NADH) electrooxidation.

Why it matters

OpenAlex reports 32 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract This work presents an in situ route to electrochemically prepare an oxidized carbon surface from glassy carbon electrodes (GCEs), which generates a material with a similar electrochemical response as graphene oxide. The proposed in situ route is fast, simple, environmentally friendly and consists in applying a potential of +1.8 V vs. SCE to a GCE. The oxidized electrode surface (GCEOS) and its subsequent electrochemical reduction (GCEERS) can be accomplished easily and efficiently by electrochemical techniques. GCEOS and GCEERS were characterized by electrochemical, spectroscopic and microscopy techniques, revealing the in situ origin of the material and confirming its chemical similarity to the graphene oxide prepared by the Hummers and Tour methods. The presence of a 2D atomically thick material was not observed, which strongly indicates that the electrochemical response of graphene oxide resides only in the oxygenated functional groups. The remaining oxygenated groups in GCEERS show a drastic cathodic shift of potential (542 mV) for nicotinamide adenine dinucleotide (NADH) electrooxidation.

Key concepts: Graphene, Electrochemistry, Oxide, Glassy carbon, Materials science, Electrode, Carbon fibers, Inorganic chemistry

Related papers

Back to paper searchBrowse research topicsOriginal source
Electrochemical Oxidation of Glassy Carbon Provides Similar Electrochemical Response as Graphene Oxide Prepared by Tour or Hummers Routes — Research Paper | ScholarLens