PAMELA: An open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowires

We present a new pseudospectral approach for incorporating many-body, nonlocal exact exchange interactions to understand the formation of electron gases in core-shell nanowires. Our approach is efficiently implemented in the open-source software package PAMELA (Pseudospectral Analysis Method with Ex...

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Main Authors: Andrew W. Long, Bryan M. Wong
Format: Article
Language:English
Published: AIP Publishing LLC 2012-09-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.4754603
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spelling doaj-af94e8c43e0042fdbaaebadb03ba2dff2020-11-25T02:16:54ZengAIP Publishing LLCAIP Advances2158-32262012-09-0123032173032173-1910.1063/1.4754603073203ADVPAMELA: An open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowiresAndrew W. Long0Bryan M. Wong1Department of Materials Science and Engineering, University of Illinois at Urbana Champaign, Urbana, Illinois 61801, USAMaterials Chemistry Department, Sandia National Laboratories, Livermore, California 94551, USAWe present a new pseudospectral approach for incorporating many-body, nonlocal exact exchange interactions to understand the formation of electron gases in core-shell nanowires. Our approach is efficiently implemented in the open-source software package PAMELA (Pseudospectral Analysis Method with Exchange & Local Approximations) that can calculate electronic energies, densities, wavefunctions, and band-bending diagrams within a self-consistent Schrödinger-Poisson formalism. The implementation of both local and nonlocal electronic effects using pseudospectral methods is key to PAMELA's efficiency, resulting in significantly reduced computational effort compared to finite-element methods. In contrast to the new nonlocal exchange formalism implemented in this work, we find that the simple, conventional Schrödinger-Poisson approaches commonly used in the literature (1) considerably overestimate the number of occupied electron levels, (2) overdelocalize electrons in nanowires, and (3) significantly underestimate the relative energy separation between electronic subbands. In addition, we perform several calculations in the high-doping regime that show a critical tunneling depth exists in these nanosystems where tunneling from the core-shell interface to the nanowire edge becomes the dominant mechanism of electron gas formation. Finally, in order to present a general-purpose set of tools that both experimentalists and theorists can easily use to predict electron gas formation in core-shell nanowires, we document and provide our efficient and user-friendly PAMELA source code that is freely available at http://alum.mit.edu/www/usagi.http://dx.doi.org/10.1063/1.4754603
collection DOAJ
language English
format Article
sources DOAJ
author Andrew W. Long
Bryan M. Wong
spellingShingle Andrew W. Long
Bryan M. Wong
PAMELA: An open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowires
AIP Advances
author_facet Andrew W. Long
Bryan M. Wong
author_sort Andrew W. Long
title PAMELA: An open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowires
title_short PAMELA: An open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowires
title_full PAMELA: An open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowires
title_fullStr PAMELA: An open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowires
title_full_unstemmed PAMELA: An open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowires
title_sort pamela: an open-source software package for calculating nonlocal exact exchange effects on electron gases in core-shell nanowires
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2012-09-01
description We present a new pseudospectral approach for incorporating many-body, nonlocal exact exchange interactions to understand the formation of electron gases in core-shell nanowires. Our approach is efficiently implemented in the open-source software package PAMELA (Pseudospectral Analysis Method with Exchange & Local Approximations) that can calculate electronic energies, densities, wavefunctions, and band-bending diagrams within a self-consistent Schrödinger-Poisson formalism. The implementation of both local and nonlocal electronic effects using pseudospectral methods is key to PAMELA's efficiency, resulting in significantly reduced computational effort compared to finite-element methods. In contrast to the new nonlocal exchange formalism implemented in this work, we find that the simple, conventional Schrödinger-Poisson approaches commonly used in the literature (1) considerably overestimate the number of occupied electron levels, (2) overdelocalize electrons in nanowires, and (3) significantly underestimate the relative energy separation between electronic subbands. In addition, we perform several calculations in the high-doping regime that show a critical tunneling depth exists in these nanosystems where tunneling from the core-shell interface to the nanowire edge becomes the dominant mechanism of electron gas formation. Finally, in order to present a general-purpose set of tools that both experimentalists and theorists can easily use to predict electron gas formation in core-shell nanowires, we document and provide our efficient and user-friendly PAMELA source code that is freely available at http://alum.mit.edu/www/usagi.
url http://dx.doi.org/10.1063/1.4754603
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