Tight-binding models provide a conceptually transparent and computationally efficient method to represent the electronic properties of materials. With AFLOW?? we introduce a framework for high-throughput first principles calculations that automatically generates tight-binding hamiltonians without any additional input. Several additional features are included in AFLOW?? with the intent to simplify the self-consistent calculation of Hubbard U corrections, the calculations of phonon dispersions, elastic properties, complex dielectric constants, and electronic transport coefficients. As examples we show how to compute the optical properties of layered nitrides in the AMN2 family, and the elastic and vibrational properties of binary halides with CsCl and NaCl structure.

AFLOW?: A minimalist approach to high-throughput ab initio calculations including the generation of tight-binding hamiltonians

D'Amico P;Ceresoli D;Calzolari A;
2017

Abstract

Tight-binding models provide a conceptually transparent and computationally efficient method to represent the electronic properties of materials. With AFLOW?? we introduce a framework for high-throughput first principles calculations that automatically generates tight-binding hamiltonians without any additional input. Several additional features are included in AFLOW?? with the intent to simplify the self-consistent calculation of Hubbard U corrections, the calculations of phonon dispersions, elastic properties, complex dielectric constants, and electronic transport coefficients. As examples we show how to compute the optical properties of layered nitrides in the AMN2 family, and the elastic and vibrational properties of binary halides with CsCl and NaCl structure.
2017
Istituto Nanoscienze - NANO
Computer simulations
High-throughput calculations
Materials databases
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Descrizione: AFLOW?: A minimalist approach to high-throughput ab initio calculations including the generation of tight-binding hamiltonians
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/354873
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