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Organic field-effect transistor based sensors with sensitive gate dielectrics used for low-concentration ammonia detection

机译:具有敏感栅极电介质的基于有机场效应晶体管的传感器用于低浓度氨气检测

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摘要

A novel organic field-effect transistor (OFET)-sensor concept is presented based on the application of an ion-conducting organic dielectric material, which is chemically adapted to change its electronic properties upon contact with an analyte, thereby generating an electrically detectable response. By employing pH-sensitive, ring-opening metathesis polymerized materials as gate dielectrics in bottom-contact OFETs with a meander-shaped top-gate structure, the concept was successfully realized and evaluated with ammonia (NH_3) as gaseous analyte, easily providing distinct sensor response at concentration levels as low as 100 ppm. In addition to current-voltage OFET-analysis, optical spectroscopy and capacitance measurements were used to rationalize the underlying sensor mechanism, which is mainly attributed to a deprotonation of the pH-sensitive groups of the active-sensing dielectrics by NH_3 and a resulting generation of mobile ions, leading to an increase of the charge carrier density within the OFET channel. The proposed concept provides several advantages over existing OFET-sensor detection principles, including the separation of the sensing mechanism from the charge-transport functionality of the semiconductor, inherent protection of the latter against air exposure and increased selectivity by the application of specific dielectric materials. It therefore offers a great deal of promise in contributing to the development of cheap, integrated, smart and flexible (bio)sensor systems.
机译:基于离子导电有机电介质材料的应用,提出了一种新颖的有机场效应晶体管(OFET)传感器概念,该材料在化学上适于在与分析物接触时改变其电子性能,从而产生电可检测的响应。通过将pH敏感的开环易位聚合材料用作具有曲折形顶栅结构的底部接触OFET中的栅电介质,该概念得以成功实现并以氨气(NH_3)作为气态分析物进行了评估,可轻松提供独特的传感器浓度低至100 ppm时的响应。除了进行电流电压OFET分析外,还使用光学光谱和电容测量来合理化基本的传感器机制,这主要归因于NH_3对有源感应电介质的pH敏感基团进行了去质子化,并最终产生了移动离子,导致OFET通道内的载流子密度增加。与现有的OFET传感器检测原理相比,所提出的概念具有多个优点,包括将传感机制与半导体的电荷传输功能分离,对半导体的固有保护以防止空气暴露以及通过应用特定介电材料提高选择性。因此,它为开发廉价,集成,智能和灵活的(生物)传感器系统做出了巨大的希望。

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  • 来源
    《Organic Electronics》 |2013年第2期|500-504|共5页
  • 作者单位

    NanoTecCenter Weiz Forschungsgesellschaft mbH, Franz-Pichler-Strasse 32, 8160 Weiz, Austria,Institute of Solid State Physics, Craz University of Technology, Petersgasse 16, 8010 Craz, Austria;

    Institute of Solid State Physics, Craz University of Technology, Petersgasse 16, 8010 Craz, Austria;

    Institute for Chemistry and Technology of Materials, Craz University of Technology, Stremayrgasse 9, 8010 Craz, Austria;

    Institute for Chemistry and Technology of Materials, Craz University of Technology, Stremayrgasse 9, 8010 Craz, Austria;

    Macromolecular Chemistry Croup and Institute for Polymer Technology, Bergische Universitaet Wuppertal, Gaussstrasse 20, 42119 Wuppertal, Germany;

    Institute for Chemistry and Technology of Materials, Craz University of Technology, Stremayrgasse 9, 8010 Craz, Austria;

    NanoTecCenter Weiz Forschungsgesellschaft mbH, Franz-Pichler-Strasse 32, 8160 Weiz, Austria,Institute of Solid State Physics, Craz University of Technology, Petersgasse 16, 8010 Craz, Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Organic field-effect transistors; Sensors/biosensors; Organic electronics; Dielectrics; Conjugated polymers;

    机译:有机场效应晶体管;传感器/生物传感器;有机电子;电介质;共轭聚合物;

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