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使用TCAD工具对生物传感设备的ISFET结构进行数值模拟。

Numerical simulation of ISFET structures for biosensing devices with TCAD tools.

作者信息

Passeri Daniele, Morozzi Arianna, Kanxheri Keida, Scorzoni Andrea

出版信息

Biomed Eng Online. 2015;14 Suppl 2(Suppl 2):S3. doi: 10.1186/1475-925X-14-S2-S3. Epub 2015 Aug 13.

Abstract

BACKGROUND

Ion Sensitive Field Effect Transistors (ISFETs) are one of the primitive structures for the fabrication of biosensors (BioFETs). Aiming at the optimization of the design and fabrication processes of BioFETs, the correlation between technological parameters and device electrical response can be obtained by means of an electrical device-level simulation. In this work we present a numerical simulation approach to the study of ISFET structures for bio-sensing devices (BioFET) using Synopsys Sentaurus Technology Computer-Aided Design (TCAD) tools.

METHODS

The properties of a custom-defined material were modified in order to reproduce the electrolyte behavior. In particular, the parameters of an intrinsic semiconductor material have been set in order to reproduce an electrolyte solution.

RESULTS

The electrostatic behaviour (transfer characteristics) of a general BioFET structure has been simulated when the captured target number increases from 1 to 10. The ID current as a function of the VDS voltage for different positions of a single charged block and for different values of the reference electrode have been calculated.

CONCLUSIONS

We presented a numerical simulation approach to the study of Ion-Sensitive Field Effect Transistor (ISFET) structures for biosensing devices (BioFETs) using the Synopsys Sentaurus Technology Computer-Aided Design (TCAD) tools. A powerful framework for the design and optimization of biosensor has been devised, thus helping in reducing technology development time and cost. The main finding of the analysis of a general reference BioFET shows that there is no linear relationship between the number of charges and the current modulation. Actually, there is a strong position dependent effect: targets localized near the source region are most effective with respect to targets localized near the drain region. In general, even randomly distributed targets are more efficient with respect to locally grouped targets on the current modulation. Moreover, for the device at hand, a small positive biasing of the electrolyte solution, providing that the transistor goes on, will result in a greater enhancement of the current levels, still retaining a good sensitivity but greatly simplifying the operations of a real device.

摘要

背景

离子敏感场效应晶体管(ISFET)是制造生物传感器(BioFET)的原始结构之一。为了优化BioFET的设计和制造工艺,可以通过电气器件级模拟获得工艺参数与器件电响应之间的相关性。在这项工作中,我们提出了一种数值模拟方法,使用Synopsys Sentaurus技术计算机辅助设计(TCAD)工具来研究用于生物传感设备(BioFET)的ISFET结构。

方法

修改自定义材料的属性以重现电解质行为。具体而言,已设置本征半导体材料的参数以重现电解质溶液。

结果

当捕获的目标数量从1增加到10时,模拟了一般BioFET结构的静电行为(转移特性)。计算了单个带电块不同位置以及参考电极不同值时,作为VDS电压函数的ID电流。

结论

我们提出了一种数值模拟方法,使用Synopsys Sentaurus技术计算机辅助设计(TCAD)工具来研究用于生物传感设备(BioFET)的离子敏感场效应晶体管(ISFET)结构。设计了一个用于生物传感器设计和优化的强大框架,从而有助于减少技术开发时间和成本。对一般参考BioFET的分析的主要发现表明,电荷数量与电流调制之间不存在线性关系。实际上,存在很强的位置依赖性效应:位于源极区域附近的目标相对于位于漏极区域附近的目标最有效。一般来说,即使是随机分布的目标在电流调制方面也比局部分组的目标更有效。此外,对于手头的器件,只要晶体管导通,电解质溶液的小正偏置将导致电流水平的更大增强,仍然保持良好的灵敏度,但大大简化了实际器件的操作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3962/4547192/deba88456035/1475-925X-14-S2-S3-1.jpg

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