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Comparison of Non-Parabolic Hydrodynamic Simulations for Semiconductor DevicesParabolic drift-diffusion simulators are common engineering level design tools for semiconductor devices. Hydrodynamic simulators, based on the parabolic band approximation, are becoming more prevalent as device dimensions shrink and energy transport effects begin to dominate device characteristic. However, band structure effects present in state-of-the-art devices necessitate relaxing the parabolic band approximation. This paper presents simulations of ballistic diodes, a benchmark device, of Si and GaAs using two different non-parabolic hydrodynamic formulations. The first formulation uses the Kane dispersion relationship in the derivation of the conservation equations. The second model uses a power law dispersion relation {(hk)(exp 2)/2m = xW(exp Y)}. Current-voltage relations show that for the ballistic diodes considered. the non-parabolic formulations predict less current than the parabolic case. Explanations of this will be provided by examination of velocity and energy profiles. At low bias, the simulations based on the Kane formulation predict greater current flow than the power law formulation. As the bias is increased this trend changes and the power law predicts greater current than the Kane formulation. It will be shown that the non-parabolicity and energy range of the hydrodynamic model based on the Kane dispersion relation are limited due to the binomial approximation which was utilized in the derivation.
Document ID
20000014239
Acquisition Source
Headquarters
Document Type
Reprint (Version printed in journal)
Authors
Smith, A. W.
(Georgia Inst. of Tech. Atlanta, GA United States)
Brennan, K. F.
(Georgia Inst. of Tech. Atlanta, GA United States)
Date Acquired
August 19, 2013
Publication Date
January 1, 1996
Publication Information
Publication: Solid-State Electronics
Publisher: Elsevier Sciences Ltd.
Volume: 39
Issue: 7
ISSN: 0038-1101
Subject Category
Electronics And Electrical Engineering
Funding Number(s)
CONTRACT_GRANT: MDA972-93-1-0030
CONTRACT_GRANT: NSF ECS-93-13635
CONTRACT_GRANT: NAGW-2753
Distribution Limits
Public
Copyright
Other

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