首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Operating and Sensing Mechanism of Electrolyte-Gated Transistors with Floating Gates: Building a Platform for Amplified Biodetection
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Operating and Sensing Mechanism of Electrolyte-Gated Transistors with Floating Gates: Building a Platform for Amplified Biodetection

机译:带有浮栅的电解质门控晶体管的工作和传感机制:构建放大的生物检测平台

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Electrolyte-gated transistors (EGTs) with floating gates (FGs) are an emerging platform for label-free electronic biodetection. Advantages of floating gate EGTs (FG-EGTs) include signal amplification and inherent sensitivity to small voltages, on the order of 10 mV, associated with chemical binding events on the floating gate electrode surface. Here we examine how the performance of these devices depends on their architecture, specifically the relative sizes (areas) of the control gate, the floating gate, and the sourcesemiconductordrain channel. The results allow optimization of the geometry for future biodetection studies. Further, using self-assembled monolayer (SAM) chemistry, we also examine the effect of chemisorption on the floating gate on the current voltage (I-V) characteristics. We find the FG-EGTs respond to both interfacial dipoles and capacitance changes and that the I-V behavior can be reasonably predicted with a lumped capacitor model. Overall, this work provides the most detailed picture to date of the operating mechanism of these promising electronic sensing devices.
机译:具有浮栅(FG)的电解质门控晶体管(EGT)是无标签电子生物检测的新兴平台。浮栅EGT(FG-EGT)的优点包括信号放大和对10 mV量级的小电压的固有敏感性,这与浮栅电极表面的化学结合事件有关。在这里,我们研究了这些设备的性能如何取决于它们的体系结构,特别是控制栅,浮栅和sourcesemiconductordordrain通道的相对大小(面积)。结果允许优化几何结构以用于将来的生物检测研究。此外,使用自组装单分子层(SAM)化学方法,我们还检查了化学吸附对浮栅上电流电压(I-V)特性的影响。我们发现FG-EGT对界面偶极子和电容变化都做出了响应,并且可以通过集总电容器模型合理地预测I-V行为。总的来说,这项工作提供了这些有前途的电子传感设备迄今为止最详细的操作机制图。

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