Universiti Teknologi Malaysia Institutional Repository

Development of solution-gated graphene transistor model for biosensors

Karimi, Hediyeh and Yusof, Rubiyah and Rahmani, Rasoul and Hosseinpour, Hoda and Ahmadi, Mohammad Taghi (2014) Development of solution-gated graphene transistor model for biosensors. Nanoscale Research Letters, 9 . ISSN 1556-276X

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Official URL: http://dx.doi.org/10.1186/1556-276X-9-71

Abstract

The distinctive properties of graphene, characterized by its high carrier mobility and biocompatibility, have stimulated extreme scientific interest as a promising nanomaterial for future nanoelectronic applications. In particular, graphene-based transistors have been developed rapidly and are considered as an option for DNA sensing applications. Recent findings in the field of DNA biosensors have led to a renewed interest in the identification of genetic risk factors associated with complex human diseases for diagnosis of cancers or hereditary diseases. In this paper, an analytical model of graphene-based solution gated field effect transistors (SGFET) is proposed to constitute an important step towards development of DNA biosensors with high sensitivity and selectivity. Inspired by this fact, a novel strategy for a DNA sensor model with capability of single-nucleotide polymorphism detection is proposed and extensively explained. First of all, graphene-based DNA sensor model is optimized using particle swarm optimization algorithm. Based on the sensing mechanism of DNA sensors, detective parameters (Ids and Vgmin) are suggested to facilitate the decision making process. Finally, the behaviour of graphene-based SGFET is predicted in the presence of single-nucleotide polymorphism with an accuracy of more than 98% which guarantees the reliability of the optimized model for any application of the graphene-based DNA sensor. It is expected to achieve the rapid, quick and economical detection of DNA hybridization which could speed up the realization of the next generation of the homecare sensor system

Item Type:Article
Uncontrolled Keywords:DNA hybridization, graphene, optimization, particle swarm optimization single-nucleotide polymorphism, solution-gated field effect transistor
Subjects:T Technology > TK Electrical engineering. Electronics Nuclear engineering
Divisions:Electrical Engineering
ID Code:52386
Deposited By: Siti Nor Hashidah Zakaria
Deposited On:01 Feb 2016 03:53
Last Modified:17 Sep 2018 04:08

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