Search Results

Non-Parabolic Hydrodynamic Formulations for the Simulation of Inhomogeneous Semiconductor Devices

Download or Read eBook Non-Parabolic Hydrodynamic Formulations for the Simulation of Inhomogeneous Semiconductor Devices PDF written by National Aeronautics and Space Administration (NASA) and published by Createspace Independent Publishing Platform. This book was released on 2018-07-09 with total page 26 pages. Available in PDF, EPUB and Kindle.
Non-Parabolic Hydrodynamic Formulations for the Simulation of Inhomogeneous Semiconductor Devices
Author :
Publisher : Createspace Independent Publishing Platform
Total Pages : 26
Release :
ISBN-10 : 172241961X
ISBN-13 : 9781722419615
Rating : 4/5 (1X Downloads)

Book Synopsis Non-Parabolic Hydrodynamic Formulations for the Simulation of Inhomogeneous Semiconductor Devices by : National Aeronautics and Space Administration (NASA)

Book excerpt: Hydrodynamic models are becoming prevalent design tools for small scale devices and other devices in which high energy effects can dominate transport. Most current hydrodynamic models use a parabolic band approximation to obtain fairly simple conservation equations. Interest in accounting for band structure effects in hydrodynamic device simulation has begun to grow since parabolic models can not fully describe the transport in state of the art devices due to the distribution populating non-parabolic states within the band. This paper presents two different non-parabolic formulations of the hydrodynamic model suitable for the simulation of inhomogeneous semiconductor devices. The first formulation uses the Kane dispersion relationship (hk)(exp 2)/2m = W(1 + alpha(W)). The second formulation makes use of a power law ((hk)(exp 2)/2m = xW(sup y)) for the dispersion relation. Hydrodynamic models which use the first formulation rely on the binomial expansion to obtain moment equations with closed form coefficients. This limits the energy range over which the model is valid. The power law formulation readily produces closed form coefficients similar to those obtained using the parabolic band approximation. However, the fitting parameters (x, y) are only valid over a limited energy range. The physical significance of the band non-parabolicity is discussed as well as the advantages/disadvantages and approximations of the two non-parabolic models. A companion paper describes device simulations based on the three dispersion relationships: parabolic, Kane dispersion, and power low dispersion. Smith, Arlynn W. and Brennan, Kevin F. Unspecified Center MDA972-93-1-0030; NAGw-2753; NSF ECS-93-13635..


Non-Parabolic Hydrodynamic Formulations for the Simulation of Inhomogeneous Semiconductor Devices Related Books

Non-Parabolic Hydrodynamic Formulations for the Simulation of Inhomogeneous Semiconductor Devices
Language: en
Pages: 26
Authors: National Aeronautics and Space Administration (NASA)
Categories:
Type: BOOK - Published: 2018-07-09 - Publisher: Createspace Independent Publishing Platform

DOWNLOAD EBOOK

Hydrodynamic models are becoming prevalent design tools for small scale devices and other devices in which high energy effects can dominate transport. Most curr
Simulation of Semiconductor Devices and Processes
Language: en
Pages: 515
Authors: Heiner Ryssel
Categories: Computers
Type: BOOK - Published: 2012-12-06 - Publisher: Springer Science & Business Media

DOWNLOAD EBOOK

SISDEP ’95 provides an international forum for the presentation of state-of-the-art research and development results in the area of numerical process and devi
Government Reports Announcements & Index
Language: en
Pages: 534
Authors:
Categories: Science
Type: BOOK - Published: 1996 - Publisher:

DOWNLOAD EBOOK

Electrical & Electronics Abstracts
Language: en
Pages: 1948
Authors:
Categories: Electrical engineering
Type: BOOK - Published: 1997 - Publisher:

DOWNLOAD EBOOK

Computational Electronics
Language: en
Pages: 866
Authors: Dragica Vasileska
Categories: Technology & Engineering
Type: BOOK - Published: 2017-12-19 - Publisher: CRC Press

DOWNLOAD EBOOK

Starting with the simplest semiclassical approaches and ending with the description of complex fully quantum-mechanical methods for quantum transport analysis o
Scroll to top