Nanostructures based on copper (Cu-NSs) are promising materials in different fields of application. To this end, in this work we have studied a simple one-step electrosynthesis of Cu-NSs directly onto ITO electrode surface starting from an aqueous solution of copper sulphate. We have investigated the effects of the presence of electrolyte salts such as K2SO4, Na2SO4 and (NH4)(2)SO4 and we have found that they gave rise to the formation of a number of remarkably different forms of nanostructures. In particular, when the electrodeposition was conducted in presence of K2SO4 fractal-like or dendritic structures consisting of a long central backbone and sharp side branches were observed. The resulting Cu-NSs were characterized by SEM, XRD and by electrochemical techniques. Studies on the electrocatalytic behaviour of dendritic Cu-NSs modified electrodes towards the oxidation of L-tyrosine in 0.05 M NaOH solution showed a 1.0 10(-6) divided by 7.0 10(-5) M linear range and a detection limit of ca. 6.0 10(-7) M. (C) 2013 Elsevier Ltd. All rights reserved.

Simple one step electrochemical preparation of copper nanostructures

Ballarin Barbara;
2014

Abstract

Nanostructures based on copper (Cu-NSs) are promising materials in different fields of application. To this end, in this work we have studied a simple one-step electrosynthesis of Cu-NSs directly onto ITO electrode surface starting from an aqueous solution of copper sulphate. We have investigated the effects of the presence of electrolyte salts such as K2SO4, Na2SO4 and (NH4)(2)SO4 and we have found that they gave rise to the formation of a number of remarkably different forms of nanostructures. In particular, when the electrodeposition was conducted in presence of K2SO4 fractal-like or dendritic structures consisting of a long central backbone and sharp side branches were observed. The resulting Cu-NSs were characterized by SEM, XRD and by electrochemical techniques. Studies on the electrocatalytic behaviour of dendritic Cu-NSs modified electrodes towards the oxidation of L-tyrosine in 0.05 M NaOH solution showed a 1.0 10(-6) divided by 7.0 10(-5) M linear range and a detection limit of ca. 6.0 10(-7) M. (C) 2013 Elsevier Ltd. All rights reserved.
2014
Cu nanoparticles
Electrosynthesis
Electrocatalysis
Dendrite
L-tyrosine
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/304733
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