Electrochemical restructuring of copper surfaces using organic additives and its effect on the electrocatalytic reduction of nitrate ions


Autoria(s): Balkis, Ali; O'Mullane, Anthony P.
Data(s)

2015

Resumo

This work describes the fabrication of nanostructured copper electrodes using a simple potential cycling protocol that involves oxidation and reduction of the surface in an alkaline solution. It was found that the inclusion of additives, such as benzyl alcohol and phenylacetic acid, has a profound effect on the surface oxidation process and the subsequent reduction of these oxides. This results in not only a morphology change, but also affects the electrocatalytic performance of the electrode for the reduction of nitrate ions. In all cases, the electrocatalytic performance of the restructured electrodes was significantly enhanced compared with the unmodified electrode. The most promising material was formed when phenylacetic acid was used as the additive. In addition, the reduction of residual oxides on the surface after the modification procedure to expose freshly active reaction sites on the surface before nitrate reduction was found to be a significant factor in dictating the overall electrocatalytic activity. It is envisaged that this approach offers an interesting way to fabricate other nanostructured electrode surfaces.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/86214/

Publicador

CSIRO Publishing

Relação

http://eprints.qut.edu.au/86214/1/Cu%20restructuring.pdf

DOI:10.1071/CH15191

Balkis, Ali & O'Mullane, Anthony P. (2015) Electrochemical restructuring of copper surfaces using organic additives and its effect on the electrocatalytic reduction of nitrate ions. Australian Journal of Chemistry, 68(8), pp. 1213-1220.

http://purl.org/au-research/grants/ARC/FT110100760

Direitos

Copyright 2015 CSIRO

Fonte

School of Chemistry, Physics & Mechanical Engineering; Science & Engineering Faculty

Palavras-Chave #030603 Colloid and Surface Chemistry #030604 Electrochemistry #Electrocatalysis #Copper oxide #Nitrate reduction #Electrochemistry #Nanostructured surfaces
Tipo

Journal Article