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Selective ion sensing with high resolution large area graphene field effect transistor arrays

Engineering and Technology

Selective ion sensing with high resolution large area graphene field effect transistor arrays

I. Fakih, O. Durnan, et al.

Discover how a groundbreaking wafer-scale graphene transistor technology, developed by Ibrahim Fakih and colleagues, is revolutionizing real-time ion sensing. This innovative approach enhances the resolution and selectivity of ion-sensitive field-effect transistors, enabling accurate measurements of multiple ionic species in a dynamic environment.

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~3 min • Beginner • English
Abstract
Real-time, high resolution, simultaneous measurement of multiple ionic species is challenging with existing chromatographic, spectrophotometric and potentiometric techniques. Potentiometric ion sensors exhibit limitations in both resolution and selectivity. Herein, we develop wafer scale graphene transistor technology for overcoming these limitations. Large area graphene is an ideal material for high resolution ion sensitive field effect transistors (ISFETs), while simultaneously enabling facile fabrication as compared to conventional semiconductors. We develop the ISFETs into an array and apply Nikolskii-Eisenman analysis to account for cross-sensitivity and thereby achieve high selectivity. We experimentally demonstrate real-time, simultaneous concentration measurement of K+, Na+, NH4, NO3, SO4^2−, HPO4^2− and Cl− with a resolution of ~2 × 10−3 log concentration units. The array achieves an accuracy of ±0.05 log concentration. Finally, we demonstrate real-time ion concentration measurement in an aquarium with lemnoideae lemna over three weeks, where mineral uptake by aquatic organisms can be observed during their growth.
Publisher
Nature Communications
Published On
Jun 26, 2020
Authors
Ibrahim Fakih, Oliver Durnan, Farzaneh Mahvash, Ilargi Napal, Alba Centeno, Amaia Zurutuza, Viviane Yargeau, Thomas Szkopek
Tags
ion-sensitive field-effect transistors
graphene technology
real-time measurement
ionic species
selectivity
cross-sensitivity
environmental monitoring
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