Keyword search (4,163 papers available)

"biosensor" Keyword-tagged Publications:

Title Authors PubMed ID
1 A Bacteroides synthetic biology toolkit to build an in vivo malabsorption biosensor McCallum G; Burckhardt JC; He J; Hong A; Potvin-Trottier L; Tropini C; 41610848
BIOLOGY
2 Wearable biosensors: A comprehensive overview Wu KY; Su ME; Kim Y; Nguyen L; Marchand M; Tran SD; 40683741
ENCS
3 Research Trends in the Development of Block Copolymer-Based Biosensing Platforms Chung YH; Oh JK; 39590001
CHEMBIOCHEM
4 Functional and structural characterization of an IclR family transcription factor for the development of dicarboxylic acid biosensors Pham C; Nasr MA; Skarina T; Di Leo R; Kwan DH; Martin VJJ; Stogios PJ; Mahadevan R; Savchenko A; 38696354
BIOLOGY
5 Advancement in Biosensor Technologies of 2D MaterialIntegrated with Cellulose-Physical Properties Ramezani G; Stiharu I; van de Ven TGM; Nerguizian V; 38258201
ENCS
6 A Synthetic Biosensor for Detecting Putrescine in Beef Samples Selim AS; Perry JM; Nasr MA; Pimprikar JM; Shih SCC; 36356104
BIOLOGY
7 A Versatile Transcription Factor Biosensor System Responsive to Multiple Aromatic and Indole Inducers Nasr MA; Timmins LR; Martin VJJ; Kwan DH; 35316041
CHEMBIOCHEM
8 Defective GaAs nanoribbon-based biosensor for lung cancer biomarkers: a DFT study Tarun T; Singh P; Kaur H; Walia GK; Randhawa DKK; Choudhary BC; 34459994
ENCS
9 Seeing is believing: tools to study the role of Rho GTPases during cytokinesis Koh SP; Pham NP; Piekny A; 34405757
BIOLOGY
10 Recent Advances of DNA Tetrahedra for Therapeutic Delivery and Biosensing. Copp W, Pontarelli A, Wilds CJ 33506614
CHEMBIOCHEM
11 Finite Element Modelling of Bandgap Engineered Graphene FET with the Application in Sensing Methanethiol Biomarker. Singh P, Abedini Sohi P, Kahrizi M 33467459
ENCS

 

Title:Finite Element Modelling of Bandgap Engineered Graphene FET with the Application in Sensing Methanethiol Biomarker.
Authors:Singh PAbedini Sohi PKahrizi M
Link:https://www.ncbi.nlm.nih.gov/pubmed/33467459
DOI:10.3390/s21020580
Publication:Sensors (Basel, Switzerland)
Keywords:COMSOL modellingDFTGFETbandgap engineeringfunctionalized graphenemethanethiol biosensor
PMID:33467459 Category:Sensors (Basel) Date Added:2021-01-21
Dept Affiliation: ENCS
1 Department of Electrical and Computer Engineering, Concordia University, Montreal, QC H3G1M8, Canada.

Description:

Finite Element Modelling of Bandgap Engineered Graphene FET with the Application in Sensing Methanethiol Biomarker.

Sensors (Basel). 2021 Jan 15; 21(2):

Authors: Singh P, Abedini Sohi P, Kahrizi M

Abstract

In this work, we have designed and simulated a graphene field effect transistor (GFET) with the purpose of developing a sensitive biosensor for methanethiol, a biomarker for bacterial infections. The surface of a graphene layer is functionalized by manipulation of its surface structure and is used as the channel of the GFET. Two methods, doping the crystal structure of graphene and decorating the surface by transition metals (TMs), are utilized to change the electrical properties of the graphene layers to make them suitable as a channel of the GFET. The techniques also change the surface chemistry of the graphene, enhancing its adsorption characteristics and making binding between graphene and biomarker possible. All the physical parameters are calculated for various variants of graphene in the absence and presence of the biomarker using counterpoise energy-corrected density functional theory (DFT). The device was modelled using COMSOL Multiphysics. Our studies show that the sensitivity of the device is affected by structural parameters of the device, the electrical properties of the graphene, and with adsorption of the biomarker. It was found that the devices made of graphene layers decorated with TM show higher sensitivities toward detecting the biomarker compared with those made by doped graphene layers.

PMID: 33467459 [PubMed - in process]





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