DocumentCode
947666
Title
Coupled Mechanical and 3-D Monte Carlo Simulation of Silicon Nanowire MOSFETs
Author
Ghetti, Andrea ; Carnevale, Gianpietro ; Rideau, Denis
Author_Institution
STMicroelectron.-FTM-Adv. R&D, Agrate Brianza
Volume
6
Issue
6
fYear
2007
Firstpage
659
Lastpage
666
Abstract
In this paper we report on a general methodology to investigate nanowire MOSFETs based on the coupling of mechanical simulation with 3-D real-space Monte Carlo simulation. The Monte Carlo transport model accounts for both strain silicon and quantum mechanical effects. Mechanical strain effects are accounted for through an appropriate change of the anisotropic band structure computed with the empirical pseudopotential method. Quantum effects are instead included by means of a quantum mechanical correction of the potential coming from the self-consistent solution of the Schrodinger equation. This methodology has been then applied to the simulation of a test case silicon nanowire n-MOSFET. Impact of mechanical strain and quantum effects on the drive current is investigated. It is shown that only the inclusion of strain and quantum mechanical effects allows a good agreement with experimental data, demonstrating the validity of the proposed methodology for ultimate devices.
Keywords
MOSFET; Monte Carlo methods; SCF calculations; Schrodinger equation; band structure; elemental semiconductors; internal stresses; nanowires; pseudopotential methods; semiconductor quantum dots; silicon; 3-D Monte Carlo simulation; Schrodinger equation; Si; anisotropic band structure; coupled mechanical simulation; drive current; empirical pseudopotential method; mechanical strain effects; quantum mechanical effects; self-consistent solution; silicon nanowire MOSFETs; Monte Carlo simulation; Nanowire MOSFET; nanowire MOSFET; quantum effects; strained silicon;
fLanguage
English
Journal_Title
Nanotechnology, IEEE Transactions on
Publisher
ieee
ISSN
1536-125X
Type
jour
DOI
10.1109/TNANO.2007.908491
Filename
4359136
Link To Document