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dc.contributor.advisorBhuian, Dr. Md. Belal Hossain
dc.contributor.authorShakil, Shifur Rahman
dc.contributor.authorFatema Tuz Zohra
dc.contributor.authorPramanik, Parna
dc.contributor.authorTushar, Raihanul Islam
dc.date.accessioned2014-09-14T11:03:52Z
dc.date.available2014-09-14T11:03:52Z
dc.date.copyright2014
dc.date.issued2014-08
dc.identifier.otherID 11121047
dc.identifier.otherID 11121096
dc.identifier.otherID 11121002
dc.identifier.otherID 11121034
dc.identifier.urihttp://hdl.handle.net/10361/3625
dc.descriptionThis thesis report is submitted in partial fulfillment of the requirements for the degree of Bachelor of Science in Electrical and Electronic Engineering, 2014.en_US
dc.descriptionCataloged from PDF version of thesis report.
dc.descriptionIncludes bibliographical references (page 49).
dc.description.abstractFlexible, highly sensitive and low cost humidity sensors are highly enviable in future generation sensor technology. As a result of recent year’s research conducted concerning the applicability in gas and humidity sensors, graphene is reported to be an appropriate sensing material for this purpose. The inimitable structural, mechanical and electronic properties of graphene has attracted extensive attention of scientists, therefore the successful synthesis of novel two-dimensional (2D) graphene and the experimental observation of Dirac fermions in unpatterned graphene devices has been increasing rapidly. This thesis describes simulation based study of humidity sensing ability of patterned graphene adsorbing vapour (H2O) and investigate electronic and quantum transport properties of these system such as Device Density of States ( DDOS ), Electrostatic Effective Potential (EDP), Conductivity (G) and Current-Voltage (I-V) characteristics. Transport simulation is based on Non-equilibrium Green’s Function (NEGF) formalism. In our thesis, we have considered three cases such as semiconducting grapheme nanoribbon (N=10), metallic grapheme nanoribbon (N=11) and cascade hetero-graphene nanoribbon, where sensing medium is semiconducting GNR (N=10) and contact is metallic GNR (N=11) to realize the effect of H2O adsorption on it. We have calculated the highest number of H2O molecules that can be absorbed on corresponding to the area of GNR to get maximum current. Later on we propose a simple schematic model to characterize device performance which incorporates the effect of metal contact resistance with GNR.en_US
dc.description.statementofresponsibilityShifur Rahman Shakil, Fatema Tuz Zohra, Parna Pramanik, Raihanul Islam Tushar
dc.format.extent50 pages
dc.language.isoenen_US
dc.publisherBRAC Universityen_US
dc.rightsBRAC University Internship reports are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission.
dc.subjectElectrical and electronic engineeringen_US
dc.subjectGraphene Nanoribbonen_US
dc.subjectNon-equilibrium Green’s Functionen_US
dc.titleHumidity sensor using surface adsorbed channel modulated GrapheneNanoribbon : NEGF approachen_US
dc.typeThesisen_US
dc.contributor.departmentDepartment of Electrical and Electronic Engineering, BRAC University
dc.description.degreeB. Electrical and Electronic Engineering


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