DocumentCode
3255009
Title
Theoretical modeling of current measurement in nanoscale device considering Green´s function formalism
Author
Hassan, Asif ; Mondol, Raktim Kumar ; Bin Jafar, Imran ; Shahin, Md Zahidul Islam
Author_Institution
Dept. of Electron. & Commun. Eng., Khulna Univ. of Eng. & Technol., Khulna, Bangladesh
fYear
2015
fDate
19-20 March 2015
Firstpage
988
Lastpage
992
Abstract
In recent years there are various way of predicting the current measurement through nanoscale device has been established. One of the most widely used and accepted is non-equilibrium Green´s function method (NEGF). After NEGF method is approached scientist has worked a lot for describing the electronics characteristics in an easier way. Among them recursive algorithm is easier way of analyzing the electronics behavior through nanoscale devices only by mathematical modeling. By incorporating the Dyson´s approximation and recursive algorithm, charge density is calculated for a definite nanostructured materials. In this paper we will first observe Dyson´s approximation for calculating charge density as well as current density through the nanoscale devices. By using a unique and same dimension like length in all direction we will then calculate the current through the nanoscale device.
Keywords
Green´s function methods; electric current measurement; nanoelectronics; nanostructured materials; Dyson´s approximation; Green´s function formalism; charge density; current density; current measurement; mathematical modeling; nanoscale devices; nanostructured materials; non-equilibrium Green´s function method; recursive algorithm; Approximation methods; Current density; Graphene; Green products; Mathematical model; Nanoscale devices; Quantum mechanics; carrier transport; charge density; current density; non-equilibrium Green´s function method; recursive algorithm;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer Engineering and Applications (ICACEA), 2015 International Conference on Advances in
Conference_Location
Ghaziabad
Type
conf
DOI
10.1109/ICACEA.2015.7164850
Filename
7164850
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