Space-averaged non-equilibrium Green's function approach for quantum transport in 3D

Fuente: arXiv
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Autori principali: Mosallanejad, Vahid, Chiu, Kuei-Lin, Dou, Wenjie
Natura: Preprint
Pubblicazione: 2025
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author Mosallanejad, Vahid
Chiu, Kuei-Lin
Dou, Wenjie
author_facet Mosallanejad, Vahid
Chiu, Kuei-Lin
Dou, Wenjie
contents The non-equilibrium Green's function (NEGF) approach offers a practical framework for simulating various phenomena in mesoscopic systems. As the dimension of electronic devices shrinks to just a few nanometers, the need for new effective-mass based 3D implementations of NEGF has become increasingly apparent. This work extends our previous Finite-Volume implementation -- originally developed for the self-consistent solution of the Schrödinger and Poisson equations in 2D -- into a full 3D NEGF framework. Our implementation begins with exploring a few problems with the common textbook Finite Difference implementations of NEGF. We then concisely demonstrate how Finite-Volume discretization addresses few key implementation challenges. Importantly, we explain how this type of discretization enables evaluating the self-energies, which account for the effects of reservoirs. The potential applications of this new method are illustrated through two examples. We anticipate that this implementation will be broadly applicable to open quantum systems, especially in cases where a fully three-dimensional domain is essential.
format Preprint
id arxiv_https___arxiv_org_abs_2504_05788
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Space-averaged non-equilibrium Green's function approach for quantum transport in 3D
Mosallanejad, Vahid
Chiu, Kuei-Lin
Dou, Wenjie
Mesoscale and Nanoscale Physics
The non-equilibrium Green's function (NEGF) approach offers a practical framework for simulating various phenomena in mesoscopic systems. As the dimension of electronic devices shrinks to just a few nanometers, the need for new effective-mass based 3D implementations of NEGF has become increasingly apparent. This work extends our previous Finite-Volume implementation -- originally developed for the self-consistent solution of the Schrödinger and Poisson equations in 2D -- into a full 3D NEGF framework. Our implementation begins with exploring a few problems with the common textbook Finite Difference implementations of NEGF. We then concisely demonstrate how Finite-Volume discretization addresses few key implementation challenges. Importantly, we explain how this type of discretization enables evaluating the self-energies, which account for the effects of reservoirs. The potential applications of this new method are illustrated through two examples. We anticipate that this implementation will be broadly applicable to open quantum systems, especially in cases where a fully three-dimensional domain is essential.
title Space-averaged non-equilibrium Green's function approach for quantum transport in 3D
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2504.05788