Siriwardhane Thushani, Ou Yangguang, Pathirathna Pavithra, Hashemi Parastoo
Department of Chemistry and Biochemistry , University of South Carolina , 631 Sumter Street , Columbia , South Carolina 29208 , United States.
Anal Chem. 2018 Oct 16;90(20):11917-11924. doi: 10.1021/acs.analchem.8b02210. Epub 2018 Sep 28.
There is great interest in rapidly monitoring metals of biological and environmental interest. Electrochemistry is traditionally a powerful tool for metal analysis but can be limited by its scope and low temporal resolution. The scope is limited by the potential window of the working electrode and rapid analysis is limited, in part, by the need for nucleation/growth for preconcentration. In prior work, we showed that a rapid equilibrium mediated preconcentration process facilitated fast scan cyclic voltammetry (FSCV) responses to Cu(II) and Pb(II) at carbon fiber microelectrodes (CFMs). In this manuscript, we apply this same principle to Ca(II), Al(III), Mg(II), and Zn(II), metal ions that are traditionally difficult to electroanalyze. We demonstrate FSCV reduction peaks for these four metals whose positions and amplitudes are dependent on scan rate. The adsorption profiles of these ions onto CFMs follow Langmuir's theory for monolayer coverage. We calculate the thermodynamic equilibrium constant of metal adsorption onto CFMs and find that these constants follow the same order as those previously reported by other groups on other activated carbon materials. Finally, a real-time complexation study is performed with ligands that have preference for divalent or multivalent ions to probe the selectivity of the real-time signal. We observe a linear relationship between formation constant ( k) and % change in the FSCV signal and use this correlation to, for the first time, report the k of an Al(III)-complex. This work demonstrates the versatility of FSCV as a method with capacity to extend the scope of rapid electroanalysis.
对快速监测具有生物学和环境意义的金属有着浓厚的兴趣。传统上,电化学是金属分析的有力工具,但可能受到其范围和低时间分辨率的限制。其范围受到工作电极的电位窗口限制,而快速分析部分受到预富集所需的成核/生长的限制。在先前的工作中,我们表明快速平衡介导的预富集过程促进了碳纤维微电极(CFM)对Cu(II)和Pb(II)的快速扫描循环伏安法(FSCV)响应。在本论文中,我们将同样的原理应用于Ca(II)、Al(III)、Mg(II)和Zn(II),这些金属离子传统上难以进行电分析。我们展示了这四种金属的FSCV还原峰,其位置和幅度取决于扫描速率。这些离子在CFM上的吸附曲线遵循朗缪尔单层覆盖理论。我们计算了金属在CFM上吸附的热力学平衡常数,发现这些常数与其他研究小组先前在其他活性炭材料上报道的常数顺序相同。最后,使用对二价或多价离子有偏好的配体进行实时络合研究,以探究实时信号的选择性。我们观察到形成常数(k)与FSCV信号的变化百分比之间存在线性关系,并利用这种相关性首次报道了Al(III)络合物的k值。这项工作证明了FSCV作为一种能够扩展快速电分析范围的方法的通用性。