Issue 40, 2023

Synthesis of CuOx nanostructures in novel electrolytes under hydrodynamic conditions for photoelectrochemical applications

Abstract

In this work, CuOx (x = 1 and 2) nanostructures have been synthesized by electrochemical anodization in ethylene glycol based electrolytes using oxalic acid or NaF (with or without NaOH) as complexing agents. The influence of hydrodynamic conditions and time during anodization of copper have also been evaluated. A comprehensive morphological, structural, electrochemical and photoelectrochemical characterization of the nanostructures has been performed. The results revealed the convenient use of oxalic acid and 250 rpm for 5 minutes during electrochemical anodization to obtain homogeneous CuOx nanostructures formed by spheres with Cu2O as a predominant phase. Using this nanostructure as a photocathode for N2O photoelectron-reduction, almost 100% of N2O removal was achieved after 1 h, showing the improvement of the photoelectrochemical approach vs. the photo or the electro performance.

Graphical abstract: Synthesis of CuOx nanostructures in novel electrolytes under hydrodynamic conditions for photoelectrochemical applications

Supplementary files

Article information

Article type
Paper
Submitted
28 Jun 2023
Accepted
14 Sep 2023
First published
15 Sep 2023
This article is Open Access
Creative Commons BY-NC license

Dalton Trans., 2023,52, 14453-14464

Synthesis of CuOx nanostructures in novel electrolytes under hydrodynamic conditions for photoelectrochemical applications

G. Sánchez-García, A. Pérez-Calvo, R. M. Fernández-Domene, E. Blasco-Tamarit, R. Sánchez-Tovar and B. Solsona, Dalton Trans., 2023, 52, 14453 DOI: 10.1039/D3DT02017G

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