Quantum transport calculations: An effective medium theory based on the projector augmented wave method with the plane-wave basis

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Hauptverfasser: Lin, Yi-Cheng, Lin, Ken-Ming, Chen, Yu-Chang
Format: Preprint
Veröffentlicht: 2025
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author Lin, Yi-Cheng
Lin, Ken-Ming
Chen, Yu-Chang
author_facet Lin, Yi-Cheng
Lin, Ken-Ming
Chen, Yu-Chang
contents We present an effective medium theory based on density functional theory that is implemented in VASP using the PAW method with a plane wave basis set. The transmission coefficient is derived through three complementary approaches: the current density relation J=nqv, the field operator method, and the nonquilibrium Green's function formalism. We compare transmission coefficients calculated using EMT-PW with results from NEGF-DFT, based on the NanoDCAL package utilizing a linear combination of atomic orbitals (LCAO) basis set, for both periodic and nonperiodic boundary conditions. The minor discrepancies observed are attributed to differences in basis sets, pseudopotentials, and the treatment of lead regions. Notably, the EMT-PW framework avoids the common issue of overcompleteness encountered in non-equilibrium transport theories and allows for the decomposition of the total transmission coefficient into contributions from individual eigenstates. Furthermore, when combined with an effective gate model, EMT-PW is shown to be a powerful tool for analyzing current characteristics in nanodevices under applied gate voltages. By leveraging one-electron wavefunctions in eigenstates, this method provides a robust foundation for exploring the quantum statistics of electrons and current quantum correlations within the second quantization framework.
format Preprint
id arxiv_https___arxiv_org_abs_2507_07366
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum transport calculations: An effective medium theory based on the projector augmented wave method with the plane-wave basis
Lin, Yi-Cheng
Lin, Ken-Ming
Chen, Yu-Chang
Mesoscale and Nanoscale Physics
Computational Physics
We present an effective medium theory based on density functional theory that is implemented in VASP using the PAW method with a plane wave basis set. The transmission coefficient is derived through three complementary approaches: the current density relation J=nqv, the field operator method, and the nonquilibrium Green's function formalism. We compare transmission coefficients calculated using EMT-PW with results from NEGF-DFT, based on the NanoDCAL package utilizing a linear combination of atomic orbitals (LCAO) basis set, for both periodic and nonperiodic boundary conditions. The minor discrepancies observed are attributed to differences in basis sets, pseudopotentials, and the treatment of lead regions. Notably, the EMT-PW framework avoids the common issue of overcompleteness encountered in non-equilibrium transport theories and allows for the decomposition of the total transmission coefficient into contributions from individual eigenstates. Furthermore, when combined with an effective gate model, EMT-PW is shown to be a powerful tool for analyzing current characteristics in nanodevices under applied gate voltages. By leveraging one-electron wavefunctions in eigenstates, this method provides a robust foundation for exploring the quantum statistics of electrons and current quantum correlations within the second quantization framework.
title Quantum transport calculations: An effective medium theory based on the projector augmented wave method with the plane-wave basis
topic Mesoscale and Nanoscale Physics
Computational Physics
url https://arxiv.org/abs/2507.07366