Mattos Gabriel J, Rothen Justine A, Tiuftiakov Nikolai Yu, Bakker Eric
Department of Inorganic and Analytical Chemistry, University of Geneva, Quai Ernest-Ansermet 30, CH-1211, Geneva, Switzerland.
Department of Inorganic and Analytical Chemistry, University of Geneva, Quai Ernest-Ansermet 30, CH-1211, Geneva, Switzerland.
Anal Chim Acta. 2024 Apr 22;1299:342388. doi: 10.1016/j.aca.2024.342388. Epub 2024 Feb 28.
We report here on the development of thin-layer ion-selective membranes containing lipophilic TEMPO as a phase-transfer redox mediator for the simultaneous detection of non-redoxactive ions. This redox probe was recently introduced by our group and provides ideal ion-transfer waves when the membrane is interrogated by cyclic voltammetry. To perform multianalyte detection in the same sensing film, plasticized PVC-based membranes were doped with lithium and potassium ionophores in addition to a lipophilic cation-exchanger. The ionophores allow for ion discrimination owing to the different ionophore-cation complexation constants and the oxidation of TEMPO to the oxoammonium form results in the selective transfer of lithium and potassium at different potentials. The resulting voltammograms have half-peak widths of 100 and 102 mV, and the peak separation between anodic and cathodic scans is 8 and 9 mV for lithium and potassium, respectively, close to theoretical expectations. High peak resolution was observed, and the ion-transfer waves are still distinguishable when the ion activities differ by three orders of magnitude. These parameters are remarkably better than those obtained with other redox probes, which is important for multianalyte detection in the same voltammetric scan. Optimized membranes showed independent Nernstian shifts (slopes of 59.23 mV and 54.8 mV for K and Li, respectively) of the peak position for increasing ion concentrations. An idealized model for two ionophore-based membranes combining redox and phase-boundary potentials was applied to the proposed system with excellent correlation. Potassium and lithium ions were simultaneously detected in undiluted human serum samples with good accuracy and precision.
我们在此报告含有亲脂性TEMPO作为相转移氧化还原介质的薄层离子选择性膜的开发情况,用于同时检测非氧化还原活性离子。这种氧化还原探针最近由我们的团队引入,当通过循环伏安法对膜进行检测时,能提供理想的离子转移波。为了在同一传感膜中进行多分析物检测,除了亲脂性阳离子交换剂外,基于增塑PVC的膜还掺杂了锂和钾离子载体。由于不同的离子载体 - 阳离子络合常数,离子载体允许离子区分,并且TEMPO氧化为氧鎓铵形式会导致锂和钾在不同电位下的选择性转移。所得伏安图的半峰宽分别为100和102 mV,锂和钾的阳极扫描与阴极扫描之间的峰间距分别为8和9 mV,接近理论预期。观察到了高的峰分辨率,并且当离子活度相差三个数量级时,离子转移波仍然可区分。这些参数明显优于使用其他氧化还原探针获得的参数,这对于在同一伏安扫描中进行多分析物检测很重要。优化后的膜对于增加的离子浓度显示出峰位置的独立能斯特偏移(钾和锂的斜率分别为59.23 mV和54.8 mV)。将结合氧化还原和相界电位的基于两种离子载体的膜的理想化模型应用于所提出的系统,具有良好的相关性。在未稀释的人血清样品中同时检测到钾和锂离子,具有良好的准确度和精密度。