DocumentCode
7743
Title
Boron nitride nanotube-based biosensing of various bacterium/viruses: continuum modelling-based simulation approach
Author
Panchal, Mitesh B. ; Upadhyay, Sanjay H.
Author_Institution
Mech. & Ind. Eng. Dept., Indian Inst. of Technol. Roorkee, Roorkee, India
Volume
8
Issue
3
fYear
2014
fDate
Sept. 2014
Firstpage
143
Lastpage
148
Abstract
In this study, the feasibility of single walled boron nitride nanotube (SWBNNT)-based biosensors has been ensured considering the continuum modelling-based simulation approach, for mass-based detection of various bacterium/viruses. Various types of bacterium or viruses have been taken into consideration at the free-end of the cantilevered configuration of the SWBNNT, as a biosensor. Resonant frequency shift-based analysis has been performed with the adsorption of various bacterium/viruses considered as additional mass to the SWBNNT-based sensor system. The continuum mechanics-based analytical approach, considering effective wall thickness has been considered to validate the finite element method (FEM)-based simulation results, based on continuum volume-based modelling of the SWBNNT. As a systematic analysis approach, the FEM-based simulation results are found in excellent agreement with the analytical results, to analyse the SWBNNTs for their wide range of applications such as nanoresonators, biosensors, gas-sensors, transducers and so on. The obtained results suggest that by using the SWBNNT of smaller size the sensitivity of the sensor system can be enhanced and detection of the bacterium/virus having mass of 4.28 × 10-24 kg can be effectively performed.
Keywords
biosensors; boron compounds; continuum mechanics; finite element analysis; gas sensors; microorganisms; nanosensors; nanotube devices; BN; FEM-based simulation results; SWBNNT-based biosensors; adsorption; bacterium; boron nitride nanotube-based biosensing; cantilevered configuration; continuum mechanics-based analytical approach; continuum modelling-based simulation approach; continuum volume-based modelling; effective wall thickness; finite element method; gas-sensors; mass-based detection; nanoresonators; resonant frequency shift-based analysis; single walled boron nitride nanotube; systematic analysis approach; transducers; viruses;
fLanguage
English
Journal_Title
Nanobiotechnology, IET
Publisher
iet
ISSN
1751-8741
Type
jour
DOI
10.1049/iet-nbt.2013.0020
Filename
6869125
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