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高分辨率大面积石墨烯场效应晶体管阵列的选择性离子传感。

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

机构信息

Department of Electrical and Computer Engineering, McGill University, Montreal, QC, H3A 2A7, Canada.

Graphenea Semiconductor S.L.U, Paseo Mikeletegi 83, 20009, San Sebastian, Spain.

出版信息

Nat Commun. 2020 Jun 26;11(1):3226. doi: 10.1038/s41467-020-16979-y.

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, [Formula: see text], [Formula: see text], [Formula: see text], [Formula: see text] and Cl with a resolution of [Formula: see text] 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.

摘要

利用现有的色谱、分光光度和电位技术,实时、高分辨率、同时测量多种离子种类具有挑战性。 电位离子传感器在分辨率和选择性方面都存在局限性。 在此,我们开发了晶圆级石墨烯晶体管技术来克服这些限制。 大面积石墨烯是高分辨率离子敏感场效应晶体管 (ISFET) 的理想材料,与传统半导体相比,同时易于制造。 我们将 ISFET 开发成一个阵列,并应用 Nikolskii-Eisenman 分析来解释交叉灵敏度,从而实现高选择性。 我们通过实验证明了实时、同时测量 K、Na、[Formula: see text]、[Formula: see text]、[Formula: see text]、[Formula: see text]和 Cl 的浓度,分辨率为 [Formula: see text] 浓度单位。 该阵列的精度达到 ±0.05 log 浓度。 最后,我们在水族馆中的 lemnoideae lemna 中进行了实时离子浓度测量,在三周的时间里,可以观察到水生生物在生长过程中的矿物质吸收。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bc2/7320191/3d8919fcd0e5/41467_2020_16979_Fig1_HTML.jpg

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