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Trace-Level Potentiometric Detection in the Presence of a High Electrolyte Background

机译:高电解质背景下的痕量电位检测

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Polymeric membrane ion-selective electrodes (ISEs) have become attractive tools for trace-level environmental and biological measurements. However, applications of such ISEs are often limited to measurements with low levels of electrolyte background. This paper describes an asymmetric membrane rotating ISE configuration for trace-level potentiometric detection with a high-interfering background. The membrane electrode is conditioned in a solution of interfering ions (e.g., Na~+) so that no primary ions exist in the ISE membrane, thus avoiding the ion-exchange effect induced by high levels of interfering ones in the sample. When the electrode is in contact with the primary ions, the interfering ions in the membrane surface can be partially displaced by the primary ions due to the favorable ion-ligand interaction with the ionophore in the membrane, thus causing a steady-state potential response. By using the asymmetric membrane with an ion exchanger loaded on the membrane surface, the diffusion of the primary ions from the organic boundary layer into the bulk of the membrane can be effectively blocked; on the other hand, rotation of the membrane electrode dramatically reduces the diffusion layer thickness of the aqueous phase and significantly promotes the mass transfer of the primary ions to the sample-membrane interface. The induced accumulation of the primary ions in the membrane boundary layer largely enhances the nonequilibrium potential response. By using copper as a model, the new concept offers a subnanomolar detection limit for potentiometric measurements of heavy metals with a high electrolyte background of 0.5 M NaCl.
机译:聚合物膜离子选择电极(ISE)已成为痕量级环境和生物测量的有吸引力的工具。但是,此类ISE的应用通常仅限于电解质背景水平较低的测量。本文介绍了一种用于具有高干扰背景的痕量电位检测的非对称膜旋转ISE配置。膜电极在干扰离子(例如Na〜+)溶液中进行调节,以使ISE膜中不存在初级离子,从而避免了样品中高水平的干扰离子引起的离子交换效应。当电极与初级离子接触时,由于与膜中离子载体的良好离子-配体相互作用,膜表面中的干扰离子可能会被初级离子部分置换,从而引起稳态电势响应。通过在膜表面使用带有离子交换剂的不对称膜,可以有效地阻止一次离子从有机边界层扩散到整个膜中。另一方面,膜电极的旋转大大减小了水相的扩散层厚度,并显着促进了初级离子向样品-膜界面的传质。初级离子在膜边界层中的诱导积累大大增强了非平衡电位响应。通过使用铜作为模型,该新概念为电位计0.5 M NaCl的重金属电位测量提供了亚纳摩尔级的检测限。

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