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基于有机半导体作为准参比电极的离子传感器。

Ion sensors based on organic semiconductors acting as quasi-reference electrodes.

作者信息

Yamashita Yu, Hayakawa Harumi, Wang Pushi, Makita Tatsuyuki, Kumagai Shohei, Watanabe Shun, Takeya Jun

机构信息

Materials Innovation Research Center and Department of Advanced Materials Science, Graduate School of Frontier Sciences, The University of Tokyo, Kashiwa 277-8561, Chiba, Japan.

Research Center for Materials Nanoarchitectonics, National Institute for Materials Science, Tsukuba 305-0044, Ibaraki, Japan.

出版信息

Proc Natl Acad Sci U S A. 2024 Oct;121(40):e2405933121. doi: 10.1073/pnas.2405933121. Epub 2024 Sep 23.

Abstract

Thin-film devices that transduce the chemical activity of ions into electronic signals are essential components in various applications, including healthcare diagnostics and environmental monitoring. Combinations of organic semiconductors (OSCs) and ion-selective materials have been explored for developing solution-processable ion sensors. However, the necessity of reference electrodes (REs) and operational stability in ion-permeable OSCs have posed questions regarding whether reliable measurements with thin-film components are attainable with OSCs. Herein, we report electric double-layer transistors (EDLTs) with OSCs in single-crystal forms for ion sensing. Our EDLTs demonstrated high operational stability, with a one-to-one relationship between the source electrode potential and device resistance, and served as quasi-REs (qRE). When our EDLT is served as qRE, its drift was as small as 0.5 mV/h and comparable to that of commonly employed REs. In our system, the semiconductor-electrolyte interface is self-passivated by the alkyl chains of OSCs in single-crystal structures, with the two-dimensional transport layer appearing unaltered upon gating. EDLT arrays with ion-selective and nonselective liquid junctions enable ion concentration sensing without a conventional RE. These findings provide opportunities to develop thin-film devices based on OSCs for easy integration and reliable measurements.

摘要

能够将离子的化学活性转换为电信号的薄膜器件是包括医疗诊断和环境监测在内的各种应用中的关键组件。有机半导体(OSC)与离子选择性材料的组合已被用于开发可溶液加工的离子传感器。然而,参比电极(RE)的必要性以及离子可渗透有机半导体中的操作稳定性引发了关于是否能够通过有机半导体实现薄膜组件可靠测量的问题。在此,我们报道了用于离子传感的单晶形式有机半导体的双电层晶体管(EDLT)。我们的EDLT表现出高操作稳定性,源电极电位与器件电阻之间存在一对一关系,并充当准参比电极(qRE)。当我们的EDLT用作qRE时,其漂移小至0.5 mV/h,与常用参比电极相当。在我们的系统中,半导体 - 电解质界面通过单晶结构中有机半导体的烷基链进行自钝化,二维传输层在门控时保持不变。具有离子选择性和非选择性液体结的EDLT阵列能够在没有传统参比电极的情况下进行离子浓度传感。这些发现为开发基于有机半导体的薄膜器件以实现轻松集成和可靠测量提供了机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5af/11459129/b4135de1c4c9/pnas.2405933121fig01.jpg

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