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Extensive Benchmarking of DFT+U Calculations for Predicting Band Gaps

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arxiv 2102.04636 v3 pith:NBSKYF7B submitted 2021-02-09 cond-mat.mtrl-sci

classification cond-mat.mtrl-sci
keywords bandgapshubbardcalculationsdensity-functionalelectronicenergyextensive
verification ladder T0 review T1 audit T2 compute T3 formal

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Accurate computational predictions of band gaps are of practical importance to the modeling and development of semiconductor technologies, such as (opto)electronic devices and photoelectrochemical cells. Among available electronic-structure methods, density-functional theory (DFT) with the Hubbard U correction (DFT+U) applied to band edge states is a computationally tractable approach to improve the accuracy of band gap predictions beyond that of DFT calculations based on (semi)local functionals. At variance with DFT approximations, which are not intended to describe optical band gaps and other excited-state properties, DFT+U can be interpreted as an approximate spectral-potential method when U is determined by imposing the piecewise linearity of the total energy with respect to electronic occupations in the Hubbard manifold (thus removing self-interaction errors in this subspace), thereby providing a (heuristic) justification for using DFT+U to predict band gaps. However, it is still frequent in the literature to determine the Hubbard U parameters semiempirically by tuning their values to reproduce experimental band gaps, which ultimately alters the description of other total-energy characteristics. Here, we present an extensive assessment of DFT+U band gaps computed using self-consistent ab initio U parameters obtained from density-functional perturbation theory to impose the aforementioned piecewise linearity of the total energy. The study is carried out on 20 compounds containing transition-metal or p-block (group III-IV) elements, including oxides, nitrides, sulfides, oxynitrides, and oxysulfides...

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. The Interplay Between Electron Localization, Magnetic Order, and Jahn-Teller Distortion that Dictates LiMnO$_2$ Phase Stability

    cond-mat.mtrl-sci 2024-12 conditional novelty 7.0 of 10

    Self-consistent Hubbard parameters or hybrid functionals are needed to predict the correct ground state of LiMnO2; standard DFT+U fails, and the failure is traced to Jahn-Teller ordering and electron localization.

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