Your browser doesn't support javascript.
loading
Low Au-content CoAu electrodes for environmental applications.
Radinovic, Kristina; Milikic, Jadranka; Balciunaite, Aldona; Sukackiene, Zita; Boskovic, Marko; Tamasauskaite-Tamasiunaite, Loreta; Sljukic, Biljana.
  • Radinovic K; University of Belgrade, Faculty of Physical Chemistry Studentski trg 12-16 Belgrade 11158 Serbia.
  • Milikic J; University of Belgrade, Faculty of Physical Chemistry Studentski trg 12-16 Belgrade 11158 Serbia.
  • Balciunaite A; Center for Physical Sciences and Technology Sauletekio ave. 3 Vilnius LT-10257 Lithuania.
  • Sukackiene Z; Center for Physical Sciences and Technology Sauletekio ave. 3 Vilnius LT-10257 Lithuania.
  • Boskovic M; University of Belgrade, Institute of Chemistry, Technology, and Metallurgy, Department of Microelectronic Technologies Njegoseva 12 Belgrade 11000 Serbia.
  • Tamasauskaite-Tamasiunaite L; Center for Physical Sciences and Technology Sauletekio ave. 3 Vilnius LT-10257 Lithuania.
  • Sljukic B; University of Belgrade, Faculty of Physical Chemistry Studentski trg 12-16 Belgrade 11158 Serbia.
RSC Adv ; 12(40): 26134-26146, 2022 Sep 12.
Article en En | MEDLINE | ID: mdl-36275101
ABSTRACT
Six cobalt gold (CoAu) electrodes were prepared by electroless deposition using different gold-containing solutions (acidic and weakly acidic) and different Au deposition times. Characterization of CoAu electrodes was done by scanning electron microscopy with energy-dispersive X-ray spectroscopy, N2-sorption, and X-ray powder diffraction techniques. The possibility of using the prepared electrodes in environmental applications, i.e., for the electrochemical sensing of a trace amount of arsenic(iii) in weakly alkaline media was assessed. Employing the CoAu electrode (prepared by immersing Co/Cu into 1 mM HAuCl4 (pH 1.8) at 30 °C for 30 s) under optimized conditions (deposition potential -0.7 V and deposition time of 60 s), a low limit of detection of 2.16 ppb was obtained. Finally, this CoAu electrode showed activity for arsenic oxidation in the presence of Cu(ii) as a model interferent as well as in real samples. Furthermore, the use of CoAu electrode as an anode in fuel cells, namely, direct borohydride - hydrogen peroxide fuel cells was also assessed. A peak power density of 191 mW cm-2 was attained at 25 °C for DBHPFC with CoAu anode at a current density of 201 mA cm-2 and cell voltage of 0.95 V, respectively. The peak power density further increased with the increase of the operating temperature to 55 °C.