Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet
The modeling of nano-ballistic carrier transport nature across the nanoscale channel of a MOSFET based on streamlining of the randomly oriented velocity vectors in the presence of high electric field has been successfully done in this project. Detailed explanation of low-dimensional energy spectrum...
Saved in:
Main Author: | |
---|---|
Format: | Research Report |
Language: | English |
Published: |
Universiti Malaysia Sabah
2010
|
Subjects: | |
Online Access: | https://eprints.ums.edu.my/id/eprint/22879/1/Nano%20ballistic%20saturation%20Velocity%20modelling%20to%20enhance%20circuit%20performances.pdf https://eprints.ums.edu.my/id/eprint/22879/ |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
id |
my.ums.eprints.22879 |
---|---|
record_format |
eprints |
spelling |
my.ums.eprints.228792019-07-19T07:09:22Z https://eprints.ums.edu.my/id/eprint/22879/ Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet Ismail Saad TP Chemical technology The modeling of nano-ballistic carrier transport nature across the nanoscale channel of a MOSFET based on streamlining of the randomly oriented velocity vectors in the presence of high electric field has been successfully done in this project. Detailed explanation of low-dimensional energy spectrums and carrier statistics for quasi 3D, 20 and 10 that invoked the quantum effects and the Fermi energy distributions in non-degenerate and degenerate region essential for nanoscale transistor was found respectively. The ballistic intrinsic velocity for Q3D, Q20 and QID system has been derived for non-degenerate and degenerate regime and analyzed its dependence towards temperature and carrier concentrations. Based on ballistic velocity field characteristics, the current-voltage (I-V) characteristics of a 20 nanoscale MOSFET has been derived successfully. The gate quantum confinement (QC) effects is analyzed and applied to the modeling of nano-MOSFET. The innovative linear and saturation region of drain current expresSions of a nanoscale MOSFET is explained based on electric-field profiles at the source and drain end. A very well agreement of the theory applied and models developed with 80nm channel length fabricated MOSFET validates the explained physics based theory of a nano-ballistic carrier transport. Universiti Malaysia Sabah 2010 Research Report NonPeerReviewed text en https://eprints.ums.edu.my/id/eprint/22879/1/Nano%20ballistic%20saturation%20Velocity%20modelling%20to%20enhance%20circuit%20performances.pdf Ismail Saad (2010) Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet. (Unpublished) |
institution |
Universiti Malaysia Sabah |
building |
UMS Library |
collection |
Institutional Repository |
continent |
Asia |
country |
Malaysia |
content_provider |
Universiti Malaysia Sabah |
content_source |
UMS Institutional Repository |
url_provider |
http://eprints.ums.edu.my/ |
language |
English |
topic |
TP Chemical technology |
spellingShingle |
TP Chemical technology Ismail Saad Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet |
description |
The modeling of nano-ballistic carrier transport nature across the nanoscale channel of a MOSFET based on streamlining of the randomly oriented velocity vectors in the
presence of high electric field has been successfully done in this project. Detailed explanation of low-dimensional energy spectrums and carrier statistics for quasi 3D, 20 and 10 that invoked the quantum effects and the Fermi energy distributions in non-degenerate and degenerate region essential for nanoscale transistor was found
respectively. The ballistic intrinsic velocity for Q3D, Q20 and QID system has been derived for non-degenerate and degenerate regime and analyzed its dependence towards temperature and carrier concentrations. Based on ballistic velocity field characteristics, the current-voltage (I-V) characteristics of a 20 nanoscale MOSFET has been derived successfully. The gate quantum confinement (QC) effects is
analyzed and applied to the modeling of nano-MOSFET. The innovative linear and saturation region of drain current expresSions of a nanoscale MOSFET is explained based on electric-field profiles at the source and drain end. A very well agreement of the theory applied and models developed with 80nm channel length fabricated MOSFET validates the explained physics based theory of a nano-ballistic carrier
transport. |
format |
Research Report |
author |
Ismail Saad |
author_facet |
Ismail Saad |
author_sort |
Ismail Saad |
title |
Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet |
title_short |
Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet |
title_full |
Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet |
title_fullStr |
Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet |
title_full_unstemmed |
Nano-ballistic saturation Velocity modelling to enhance circuit performances of Nano-Mosfet |
title_sort |
nano-ballistic saturation velocity modelling to enhance circuit performances of nano-mosfet |
publisher |
Universiti Malaysia Sabah |
publishDate |
2010 |
url |
https://eprints.ums.edu.my/id/eprint/22879/1/Nano%20ballistic%20saturation%20Velocity%20modelling%20to%20enhance%20circuit%20performances.pdf https://eprints.ums.edu.my/id/eprint/22879/ |
_version_ |
1760230029124435968 |
score |
13.211869 |