DocumentCode
2184195
Title
Quantum Transport Simulations of InGaAs HEMTs: Influence of Mass Variations on the Device Performance
Author
Neophytou, Neophytos ; Kosina, Hans ; Rakshit, Titash
Author_Institution
Inst. for Microelectron., Tech. Univ. Wien, Vienna
fYear
2009
fDate
27-29 May 2009
Firstpage
1
Lastpage
3
Abstract
This paper presents a simulation work of In0.7Ga0.3As HEMT devices for logic applications using a quantum ballistic 2D simulator based on the non-equilibrium Green´s function (NEGF) approach coupled to a 2D Poisson for the electrostatics. In a previous study, we showed that In0.7Ga0.3As short channel HEMT devices operates close to the ballistic limit and can be modeled as a ballistic channel attached to two series resistances. Since the electronic structure of the quantized channel is not known precisely, or can be altered by strain fields, in this work, we quantify our results, by investigating the variation in device performance due to variations in the effective mass values. We conclude that for these devices, variations in the electronic structure do not impact the device performance significantly. The results also provide insight into the expected effect of strain on the performance due to mass variations.
Keywords
Green´s function methods; III-V semiconductors; Poisson equation; ballistic transport; band structure; effective mass; electrostatics; gallium arsenide; high electron mobility transistors; indium compounds; semiconductor device models; 2D Poisson solver; HEMT devices; InGaAs; effective mass values; electronic structure; electrostatics; mass variations; nonequilibrium Green´s function; quantum ballistic 2D simulator; quantum transport simulations; strain effect; Atomic measurements; Capacitive sensors; Effective mass; Electrostatics; Green´s function methods; HEMTs; III-V semiconductor materials; Indium gallium arsenide; MODFETs; Uncertainty;
fLanguage
English
Publisher
ieee
Conference_Titel
Computational Electronics, 2009. IWCE '09. 13th International Workshop on
Conference_Location
Beijing
Print_ISBN
978-1-4244-3925-6
Electronic_ISBN
978-1-4244-3927-0
Type
conf
DOI
10.1109/IWCE.2009.5091141
Filename
5091141
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