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Journal ArticleDOI

Fully unconstrained noncollinear magnetism within the projector augmented-wave method

David Hobbs, +2 more
- 01 Nov 2000 - 
- Vol. 62, Iss: 17, pp 11556-11570
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TLDR
In this article, a generalized local spin density theory is proposed for non-collinear magnetism, which allows both the atomic and magnetic structures to relax simultaneously and self-consistently, and has been implemented within a powerful package called VASP (Vienna ab initio simulation package).
Abstract
Spin-polarized calculations in solids have generally been confined to a global quantization axis to simplify both the theoretical model and its implementation in self-consistent codes. This approximation is justified as many materials exhibit a collinear magnetic order. However, in recent years much interest has been directed towards noncollinear magnetism in which the magnetization density is a continuous vector variable of position. In this paper we develop the all-electron projector augmented-wave (PAW) method for noncollinear magnetic structures, based on a generalized local-spin-density theory. The method allows both the atomic and magnetic structures to relax simultaneously and self-consistently. The algorithms have been implemented within a powerful package called VASP (Vienna ab initio simulation package), which has been used successfully for a large variety of different systems such as crystalline and amorphous semiconductors, simple liquids, and transition metals. The approach has been used to study small clusters of Fe and Cr; some of these clusters show noncollinear magnetic arrangements.

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Journal ArticleDOI

Ab-initio simulations of materials using VASP: Density-functional theory and beyond.

TL;DR: The implementation of various DFT functionals and many‐body techniques within highly efficient, stable, and versatile computer codes, which allow to exploit the potential of modern computer architectures are discussed.
Journal ArticleDOI

Density functional theory for transition metals and transition metal chemistry

TL;DR: In this article, the authors introduce density functional theory and review recent progress in its application to transition metal chemistry, including local, meta, hybrid, hybrid meta, and range-separated functionals, band theory, software, validation tests, and applications to spin states, magnetic exchange coupling, spectra, structure, reactivity, and solids.
Journal ArticleDOI

The Perdew–Burke–Ernzerhof exchange-correlation functional applied to the G2-1 test set using a plane-wave basis set

TL;DR: A plane-wave-based algorithm was implemented in VASP (Vienna ab-initio simulation package) to allow for the calculation of the exact exchange of exact exchange and hybrid functionals, with excellent agreement for both atomization energies and geometries.
Journal ArticleDOI

The PYXAID Program for Non-Adiabatic Molecular Dynamics in Condensed Matter Systems.

TL;DR: The PYXAID program is introduced, developed for non-adiabatic molecular dynamics simulations in condensed matter systems and used to study photoinduced dynamics at the ab initio level in systems composed of hundreds of atoms and involving thousands of electronic states.
Journal ArticleDOI

Higher-Order Topology in Bismuth

TL;DR: In this paper, the electronic structure of bismuth, an element consistently described as bulk topologically trivial, is in fact topological and follows a generalized bulkboundary correspondence of higher-order: not the surfaces of the crystal, but its hinges host topologically protected conducting modes.
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