School of Engineering, Brown University, 184 Hope Street, Providence, RI, 02912, USA.
Sci Rep. 2018 Jan 31;8(1):1965. doi: 10.1038/s41598-018-20412-2.
Nanoscale working electrodes and miniaturized electroanalytical devices are valuable platforms to probe molecular phenomena and perform chemical analyses. However, the inherent close distance of metallic electrodes integrated into a small volume of electrolyte can complicate classical electroanalytical techniques. In this study, we use a scanning nanopipette contact probe as a model miniaturized electrochemical cell to demonstrate measurable side effects of the reaction occurring at a quasi-reference electrode. We provide evidence for in situ generation of nanoparticles in the absence of any electroactive species and we critically analyze the origin, nucleation, dissolution and dynamic behavior of these nanoparticles as they appear at the working electrode. It is crucial to recognize the implications of using quasi-reference electrodes in confined electrochemical cells, in order to accurately interpret the results of nanoscale electrochemical experiments.
纳米级工作电极和微型电化学生成设备是探测分子现象和进行化学分析的重要平台。然而,集成在小体积电解质中的金属电极的固有近距离会使经典电化学技术变得复杂。在这项研究中,我们使用扫描纳米管接触探针作为微型电化学池的模型,证明了在准参比电极处发生的反应会产生可测量的副反应。我们提供了在不存在任何电活性物质的情况下原位生成纳米颗粒的证据,并对这些纳米颗粒在工作电极上出现时的起源、成核、溶解和动态行为进行了批判性分析。在对纳米尺度电化学实验结果进行准确解释时,必须认识到在受限电化学池使用准参比电极的影响。