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Solid-Contact Ion-Selective and Reference Electrodes Covalently Attached to Functionalized Poly(ethylene terephthalate)

机译:固体接触离子选择性和参考电极与官能化聚(乙烯对苯二甲酸乙二醇酯)共价连接

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摘要

Numerous ion-selective and reference electrodes have been developed over the years. Following the need for point-of-care and wearable sensors, designs have transitioned recently from bulky devices with an aqueous inner filling solution to planarizable solid-contact electrodes. However, unless the polymeric sensing and reference membranes are held in place mechanically, delamination of these membranes from the underlying solid to which they adhere physically limits sensor lifetime. Even minor external mechanical stress or thermal expansion can result in membrane delamination and, thereby, device failure. To address this problem, we designed a sensing platform based on poly(ethylene terephthalate) substrates to which polyacrylate-based sensing and polymethacrylate-based reference membranes are attached covalently. Ion-selective membranes with covalently attached or freely dissolved ionophore- and ionic-liquid-doped reference membranes can be directly photopolymerized onto surface-functionalized poly(ethylene terephthalate), resulting in the formation of covalent bonds between the underlying substrate and the attached membranes. H+- and K+-selective electrodes thus prepared exhibit highly selective responses with the theoretically expected (Nernstian) response slope, and reference electrodes provide sample-independent reference potentials over a wide range of electrolyte concentrations. Even repeated mechanical stress does not result in the delamination of the sensing and reference membranes, leading to electrodes with much improved long-term performance. As demonstrated for poly(ethylene-co-cyclohexane-1,4-dimethanol terephthalate) (PETG), this approach may be expanded to a wide range of other polyester, polyamide, and polyurethane platform materials. Covalent attachment of sensing and reference membranes to an inert plastic platform material is a very promising approach to a problem that has plagued the field of ion-selective electrodes and field effect transistors for over 30 years.
机译:多年来开发了许多离子选择性和参考电极。在需要护理点和可穿戴传感器之后,设计最近从庞大的器件过渡到具有水性内填充溶液的庞大器件,以平坦的固体接触电极。然而,除非将聚合物感测和参考膜机械地固定,否则从它们所粘附的下层固体中分解这些膜,其粘附物理上限制传感器寿命。即使是小的外部机械应力或热膨胀也会导致膜分层,从而导致装置故障。为了解决这个问题,我们设计了一种基于聚(对苯二甲酸乙二醇酯)底物的传感平台,其中共价附着基于聚丙烯酸酯的感测和基于聚甲基丙烯酸酯的参考膜。具有共价附着或自由溶解的离子团和离子 - 液体掺杂的参考膜的离子选择性膜可以直接光聚合到表面官能化的聚(乙二醇酯)上,从而形成底层基底和附着的膜之间的共价键。如此制备的H +和K + - 选择性电极具有与理论上预期的(Nernstian)响应斜率的高度选择性的响应,并且参考电极在宽范围的电解质浓度上提供独立于类似的参考电位。甚至反复的机械应力也不会导致感测和参考膜的分层,导致具有大大改善的长期性能的电极。如对于聚(乙烯 - 共环己烷-1,4-二甲醇对苯二甲酸甲酯)(PETG)所示,该方法可以扩展到各种其他聚酯,聚酰胺和聚氨酯平台材料。传感和参考膜与惰性塑料平台材料的共价附着是一种非常有希望的问题,它已经困扰了离子选择性电极和场效应晶体管超过30年的问题。

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  • 来源
    《Analytical chemistry》 |2020年第11期|共9页
  • 作者单位

    Univ Minnesota Dept Chem 207 Pleasant St SE Minneapolis MN 55455 USA;

    Univ Minnesota Dept Chem Engn &

    Mat Sci 421 Washington Ave SE Minneapolis MN 55455 USA;

    Univ Minnesota Dept Chem 207 Pleasant St SE Minneapolis MN 55455 USA;

    Univ Minnesota Dept Chem 207 Pleasant St SE Minneapolis MN 55455 USA;

    Univ Minnesota Dept Chem 207 Pleasant St SE Minneapolis MN 55455 USA;

    Univ Minnesota Dept Chem 207 Pleasant St SE Minneapolis MN 55455 USA;

    Univ Minnesota Dept Chem 207 Pleasant St SE Minneapolis MN 55455 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
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