Design, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.

Nano-sensors, as an application of nanotechnology, are extremely important for environmental, medical and security applications. Terahertz science is an exciting new field that is set to impact the field of sensing to a large extent. I proposed to combine the fields of nanotechnology and terahertz s...

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Main Author: Shenoy, Sukesh
Other Authors: Banerjee, Debjyoti
Format: Others
Language:en_US
Published: Texas A&M University 2007
Subjects:
Online Access:http://hdl.handle.net/1969.1/5786
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spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-57862013-01-08T10:38:48ZDesign, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.Shenoy, SukeshnanotechnologyterahertzsensorNano-sensors, as an application of nanotechnology, are extremely important for environmental, medical and security applications. Terahertz science is an exciting new field that is set to impact the field of sensing to a large extent. I proposed to combine the fields of nanotechnology and terahertz science and develop a molecular nano-sensor that operates at terahertz frequencies. I focused our sensing on energetic materials, particularly nitromethane, and conducted an extensive analysis on its frequency spectrum. The study also focused on designing the nano-sensor and determining its terahertz operation characteristics. I subjected it to various conditions through the use of molecular dynamics simulations. Finally we analyzed the simulation results and provided a proof of the concept that we had a working molecular nano-sensor that operates at terahertz frequencies and senses energetic materials. The results from the frequency analysis of nitromethane showed that the frequency characteristics determined from our simulations were in close agreement with the ones determined experimentally. In addition to this we also successfully demonstrated the use of a Lennard Jones potential to model the CN bond scission of nitromethane. Finally, the results from the interactions between the nano-sensor and nitromethane showed that the presence of nitromethane causes sufficient change in the terahertz frequency characteristics of the nano-sensor providing a means to detect nitromethane.Texas A&M UniversityBanerjee, DebjyotiSeminario, Jorge2007-09-17T19:32:47Z2007-09-17T19:32:47Z2003-052007-09-17T19:32:47ZBookThesisElectronic Thesistext2346470 byteselectronicapplication/pdfborn digitalhttp://hdl.handle.net/1969.1/5786en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic nanotechnology
terahertz
sensor
spellingShingle nanotechnology
terahertz
sensor
Shenoy, Sukesh
Design, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.
description Nano-sensors, as an application of nanotechnology, are extremely important for environmental, medical and security applications. Terahertz science is an exciting new field that is set to impact the field of sensing to a large extent. I proposed to combine the fields of nanotechnology and terahertz science and develop a molecular nano-sensor that operates at terahertz frequencies. I focused our sensing on energetic materials, particularly nitromethane, and conducted an extensive analysis on its frequency spectrum. The study also focused on designing the nano-sensor and determining its terahertz operation characteristics. I subjected it to various conditions through the use of molecular dynamics simulations. Finally we analyzed the simulation results and provided a proof of the concept that we had a working molecular nano-sensor that operates at terahertz frequencies and senses energetic materials. The results from the frequency analysis of nitromethane showed that the frequency characteristics determined from our simulations were in close agreement with the ones determined experimentally. In addition to this we also successfully demonstrated the use of a Lennard Jones potential to model the CN bond scission of nitromethane. Finally, the results from the interactions between the nano-sensor and nitromethane showed that the presence of nitromethane causes sufficient change in the terahertz frequency characteristics of the nano-sensor providing a means to detect nitromethane.
author2 Banerjee, Debjyoti
author_facet Banerjee, Debjyoti
Shenoy, Sukesh
author Shenoy, Sukesh
author_sort Shenoy, Sukesh
title Design, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.
title_short Design, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.
title_full Design, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.
title_fullStr Design, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.
title_full_unstemmed Design, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.
title_sort design, simulation and analysis of a molecular nano-sensor operating at terahertz frequencies for energetic materials.
publisher Texas A&M University
publishDate 2007
url http://hdl.handle.net/1969.1/5786
work_keys_str_mv AT shenoysukesh designsimulationandanalysisofamolecularnanosensoroperatingatterahertzfrequenciesforenergeticmaterials
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