QuantumATK: an integrated platform of electronic and atomic-scale modelling tools

QuantumATK: интегрированная платформа инструментов для электронного моделирования и моделирования на атомном уровне
Søren Smidstrup, Troels Markussen, Pieter Vancraeyveld, Jess Wellendorff, Julian Schneider, Tue Gunst, Brecht Verstichel, Daniele Stradi, Petr A. Khomyakov, Ulrik Grønbjerg Vej-Hansen, Maeng-Eun Lee, Samuel T. Chill, Filip Rasmussen, Gabriele Penazzi, Fabiano Corsetti, Ari Ojanperä, K. Jensen, Mattias Palsgaard, Umberto Martinez, Anders Blom, Mads Brandbyge, Kurt Stokbro
2019-08-30

Green's-function methodsQuantumATKdensity functional theoryelectron transport simulationselectron-phonon coupling
QuantumATK is an integrated set of atomic-scale modelling tools developed since 2003 by professional software engineers in collaboration with academic researchers. While different aspects and individual modules of the platform have been previously presented, the purpose of this paper is to give a general overview of the platform. The QuantumATK simulation engines enable electronic-structure calculations using density functional theory or tight-binding model Hamiltonians, and also offers bonded or reactive empirical force fields in many different parametrizations. Density functional theory is implemented using either a plane-wave basis or expansion of electronic states in a linear combination of atomic orbitals. The platform includes a long list of advanced modules, including Green's-function methods for electron transport simulations and surface calculations, first-principles electron-phonon and electron-photon couplings, simulation of atomic-scale heat transport, ion dynamics, spintronics, optical properties of materials, static polarization, and more. Seamless integration of the different simulation engines into a common platform allows for easy combination of different simulation methods into complex workflows. Besides giving a general overview and presenting a number of implementation details not previously published, we also present four different application examples. These are calculations of the phonon-limited mobility of Cu, Ag and Au, electron transport in a gated 2D device, multi-model simulation of lithium ion drift through a battery cathode in an external electric field, and electronic-structure calculations of the composition-dependent band gap of SiGe alloys.
1
Advanced modules cover Green’s-function electron transport and surface calculations, electron–phonon and electron–photon couplings, heat transport, ion dynamics, spintronics, optical properties, and static polarization.
2
Applications demonstrate the platform’s use for phonon-limited mobility in Cu, Ag, and Au; gated two-dimensional electron transport; lithium-ion drift in a battery cathode; and composition-dependent SiGe band gaps.
3
Common-platform integration enables complex workflows that combine different simulation engines and modeling methods seamlessly.
4
QuantumATK integrates electronic-structure, empirical force-field, and atomic-scale simulation tools within a single platform developed through long-term software–research collaboration.
5
The platform supports density functional theory using both plane-wave and localized atomic-orbital bases, as well as tight-binding Hamiltonians and multiple bonded or reactive force-field parametrizations.

QuantumATK integrated atomic-scale modelling platform and its simulation workflows

The platform’s capabilities for combining electronic-structure, transport, heat-transport, ion-dynamics, and materials-property simulations in complex workflows

Publication Details
Publication Date
2019-08-30
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Authors
Søren Smidstrup
Troels Markussen
Pieter Vancraeyveld
Jess Wellendorff
Julian Schneider
Tue Gunst
Brecht Verstichel
Daniele Stradi
Petr A. Khomyakov
Ulrik Grønbjerg Vej-Hansen
Maeng-Eun Lee
Samuel T. Chill
Filip Rasmussen
Gabriele Penazzi
Fabiano Corsetti
Ari Ojanperä
K. Jensen
Mattias Palsgaard
Umberto Martinez
Anders Blom
Mads Brandbyge
Kurt Stokbro
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