Geometrical Characterisation of TiO2-rGO Field-Effect Transistor as a Platform for Biosensing Applications

材料科学 电极 生物传感器 石墨烯 光刻 场效应晶体管 田口方法 晶体管 光电子学 纳米技术 电子工程 复合材料 电压 电气工程 化学 工程类 物理化学
作者
Anis Amirah Alim,Roharsyafinaz Roslan,Sh. Nadzirah,Lina Khalida Saidi,P. Susthitha Menon,Ismail Aziah,Chang Fu Dee,Siti Aishah Sulaiman,Nor Azian Abdul Murad,Azrul Azlan Hamzah
出处
期刊:Micromachines [MDPI AG]
卷期号:14 (9): 1664-1664 被引量:6
标识
DOI:10.3390/mi14091664
摘要

The performance of the graphene-based field-effect transistor (FET) as a biosensor is based on the output drain current (Id). In this work, the signal-to-noise ratio (SNR) was investigated to obtain a high-performance device that produces a higher Id value. Using the finite element method, a novel top-gate FET was developed in a three-dimensional (3D) simulation model with the titanium dioxide-reduced graphene oxide (TiO2-rGO) nanocomposite as the transducer material, which acts as a platform for biosensing application. Using the Taguchi mixed-level method in Minitab software (Version 16.1.1), eighteen 3D models were designed based on an orthogonal array L18 (6134), with five factors, and three and six levels. The parameters considered were the channel length, electrode length, electrode width, electrode thickness and electrode type. The device was fabricated using the conventional photolithography patterning technique and the metal lift-off method. The material was synthesised using the modified sol–gel method and spin-coated on top of the device. According to the results of the ANOVA, the channel length contributed the most, with 63.11%, indicating that it was the most significant factor in producing a higher Id value. The optimum condition for the highest Id value was at a channel length of 3 µm and an electrode size of 3 µm × 20 µm, with a thickness of 50 nm for the Ag electrode. The electrical measurement in both the simulation and experiment under optimal conditions showed a similar trend, and the difference between the curves was calculated to be 28.7%. Raman analyses were performed to validate the quality of TiO2-rGO.

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