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片上集成、独立寻址、带控制栅的电容式场效应传感器阵列:设计与建模。

An Array of On-Chip Integrated, Individually Addressable Capacitive Field-Effect Sensors with Control Gate: Design and Modelling.

机构信息

MicroNanoBio, Liebigstr. 4, 40479 Düsseldorf, Germany.

Institute of Nano- and Biotechnologies (INB), FH Aachen, Campus Jülich, Heinrich-Mußmannstr. 1, 52428 Jülich, Germany.

出版信息

Sensors (Basel). 2021 Sep 14;21(18):6161. doi: 10.3390/s21186161.

Abstract

The on-chip integration of multiple biochemical sensors based on field-effect electrolyte-insulator-semiconductor capacitors (EISCAP) is challenging due to technological difficulties in realization of electrically isolated EISCAPs on the same Si chip. In this work, we present a new simple design for an array of on-chip integrated, individually electrically addressable EISCAPs with an additional control gate (CG-EISCAP). The existence of the CG enables an addressable activation or deactivation of on-chip integrated individual CG-EISCAPs by simple electrical switching the CG of each sensor in various setups, and makes the new design capable for multianalyte detection without cross-talk effects between the sensors in the array. The new designed CG-EISCAP chip was modelled in so-called floating/short-circuited and floating/capacitively-coupled setups, and the corresponding electrical equivalent circuits were developed. In addition, the capacitance-voltage curves of the CG-EISCAP chip in different setups were simulated and compared with that of a single EISCAP sensor. Moreover, the sensitivity of the CG-EISCAP chip to surface potential changes induced by biochemical reactions was simulated and an impact of different parameters, such as gate voltage, insulator thickness and doping concentration in Si, on the sensitivity has been discussed.

摘要

基于场效应电解质-绝缘体-半导体电容器 (EISCAP) 的多个生化传感器的片上集成由于在同一 Si 芯片上实现电隔离 EISCAP 的技术困难而具有挑战性。在这项工作中,我们提出了一种新的简单设计,用于具有附加控制栅极 (CG-EISCAP) 的片上集成、可单独电寻址的 EISCAP 阵列。CG 的存在通过在各种设置中简单地电切换每个传感器的 CG,使 CG-EISCAP 能够实现片上集成的单个 CG-EISCAP 的可寻址激活或去激活,并且使新设计能够进行多分析物检测,而不会在阵列中的传感器之间产生串扰效应。在所谓的浮动/短路和浮动/电容耦合设置中对新设计的 CG-EISCAP 芯片进行建模,并开发了相应的电气等效电路。此外,模拟了 CG-EISCAP 芯片在不同设置下的电容-电压曲线,并与单个 EISCAP 传感器的电容-电压曲线进行了比较。此外,还模拟了 CG-EISCAP 芯片对生化反应引起的表面电位变化的灵敏度,并讨论了不同参数(例如栅极电压、绝缘体厚度和 Si 中的掺杂浓度)对灵敏度的影响。

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