Selective ion sensing with high resolution large area graphene field effect transistor arrays
Nature Communications, ISSN: 2041-1723, Vol: 11, Issue: 1, Page: 3226
2020
- 118Citations
- 210Captures
- 1Mentions
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Example: if you select the 1-year option for an article published in 2019 and a metric category shows 90%, that means that the article or review is performing better than 90% of the other articles/reviews published in that journal in 2019. If you select the 3-year option for the same article published in 2019 and the metric category shows 90%, that means that the article or review is performing better than 90% of the other articles/reviews published in that journal in 2019, 2018 and 2017.
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Metrics Details
- Citations118
- Citation Indexes118
- 118
- CrossRef45
- Captures210
- Readers210
- 210
- Mentions1
- Blog Mentions1
- 1
Most Recent Blog
Graphene transistors enable selective ion sensing
New research shows that graphene field effect transistors can be used to selectively detect ions in a liquid solution. The work, just published in Nature Communications, paves the way to applications such as genome sequencing, medical diagnostics, environmental monitoring, and industrial process control. State of the art technology for detecting and resolving ions in solution relies on ion sensiti
Article Description
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−, SO42−, HPO42− and Cl with a resolution of ~2×10−3log 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.
Bibliographic Details
Springer Science and Business Media LLC
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