Design Criteria for Nanostructured Carbon Materials as Solid Contacts for Ion-Selective Sensors

被引:20
作者
Chipangura, Yevedzo E. [1 ]
Spindler, Brian D. [1 ]
Buehlmann, Philippe [1 ]
Stein, Andreas [1 ]
机构
[1] Univ Minnesota, Dept Chem, 207 Pleasant St SE, Minneapolis, MN 55454 USA
关键词
ionophore; ion-selective electrode; nanoporous carbon; nanostructured carbon; potential stability; sensors; solid contact; IMPRINTED MESOPOROUS CARBON; ORDERED MACROPOROUS CARBON; SELF-ASSEMBLED MONOLAYERS; POTENTIOMETRIC SENSORS; ELECTROCATALYST SUPPORT; REFERENCE ELECTRODES; MEMBRANE ELECTRODES; DETECTION LIMIT; LIQUID-STATE; WATER LAYER;
D O I
10.1002/adma.202309778
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The ability to miniaturize ion-selective sensors that enable microsensor arrays and wearable sensor patches for ion detection in environmental or biological samples requires all-solid-state sensors with solid contacts for transduction of an ion activity into an electrical signal. Nanostructured carbon materials function as effective solid contacts for this purpose. They can also contribute to improved potential signal stability, reducing the need for frequent sensor calibration. In this Perspective, the structural features of various carbon-based solid contacts described in the literature and their respective abilities to reduce potential drift during long-term, continuous measurements are compared. These carbon materials include nanoporous carbons with various architectures, carbon nanotubes, carbon black, graphene, and graphite-based solid contacts. The effects of accessibility of ionophores, ionic sites, and other components of an ion-selective membrane to the internal or external carbon surfaces are discussed, because this impacts double-layer capacitance and potential drift. The effects of carbon composition on water-layer formation are also considered, which is another contributor to potential drift during long-term measurements. Recommendations regarding the selection of solid contacts and considerations for their characterization and testing in solid-contact ion-selective electrodes are provided. Ion-selective microsensor arrays and wearable sensor patches require stable potentials for long-term continuous measurements. Good stability can be achieved with nanostructured carbon materials with the appropriate structure, pore architecture, and composition as solid contacts. Recommendations regarding the selection of carbon solid contacts and considerations for their characterization and testing in solid-contact ion-selective electrodes are provided in this Perspective.image
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页数:22
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