Dugeč Josipa, Rončević Ivana Škugor, Vladislavić Nives, Buzuk Marijo
Department of General and Inorganic Chemistry, Faculty of Chemistry and Technology, University of Split, 21000 Split, Croatia.
Int J Mol Sci. 2025 Aug 26;26(17):8262. doi: 10.3390/ijms26178262.
A new approach is presented to elucidate the phenomena that occur within a porous single-walled carbon nanotubes (SWCNTs) modified glassy carbon electrode (GCE) and that influence the electrochemical behavior of the modified electrode. By employing cyclic voltammetry, reverse pulse voltammetry, and double potential step chronoamperometry, insights into the structural changes in the electrochemical double layer and the mass transport regimes are gained. An analysis of the reduction of the electrochemically generated [Fe(CN)] shows that the SWCNTs layer can be considered inactive. However, their pronounced influence on the electrochemical signal arises from their capacitive behavior. Furthermore, a novel criterion for distinguishing the mass transport domains is proposed, which allows the estimation of the points at which a change in the mass transport regime occurs. The results also show the role of the porous SWCNTs layer in preventing the expansion of the double layer as well as in the process of ion condensation in the Gouy-Chapman layer. Finally, the counterintuitive and unexpected voltametric behavior, such as the independence of the current peak heights from the ionic strength of the support, the parabolic dependence of the peak potential on the scan rates, and the occurrence of steady-state currents, are discussed.
本文提出了一种新方法,以阐明在多孔单壁碳纳米管(SWCNT)修饰玻碳电极(GCE)内发生的、影响修饰电极电化学行为的现象。通过采用循环伏安法、反向脉冲伏安法和双电位阶跃计时电流法,深入了解了电化学双层中的结构变化和传质机制。对电化学产生的[Fe(CN)]还原的分析表明,SWCNT层可视为无活性。然而,它们对电化学信号的显著影响源于其电容行为。此外,还提出了一种区分传质区域的新准则,该准则允许估计传质机制发生变化的点。结果还表明了多孔SWCNT层在防止双层扩展以及在 Gouy-Chapman 层中的离子凝聚过程中的作用。最后,讨论了与直觉相反且出乎意料的伏安行为,例如电流峰高与支持电解质离子强度无关、峰电位与扫描速率呈抛物线关系以及稳态电流的出现。