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Hubbard-corrected density functional perturbation theory with ultrasoft pseudopotentials

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arxiv 1910.06195 v2 pith:BP2IROCV submitted 2019-10-14 cond-mat.str-el

classification cond-mat.str-el
keywords densityfunctionalphononsystemscalculationscapturedfptelectronic
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We present in full detail a newly developed formalism enabling density functional perturbation theory (DFPT) calculations from a DFT+$U$ ground state. The implementation includes ultrasoft pseudopotentials and is valid for both insulating and metallic systems. It aims at fully exploiting the versatility of DFPT combined with the low-cost DFT+$U$ functional. This allows to avoid computationally intensive frozen-phonon calculations when DFT+$U$ is used to eliminate the residual electronic self-interaction from approximate functionals and to capture the localization of valence electrons e.g. on $d$ or $f$ states. In this way, the effects of electronic localization (possibly due to correlations) are consistently taken into account in the calculation of specific phonon modes, Born effective charges, dielectric tensors and in quantities requiring well converged sums over many phonon frequencies, as phonon density of states and free energies. The new computational tool is applied to two representative systems, namely CoO, a prototypical transition metal monoxide and LiCoO$_2$, a material employed for the cathode of Li-ion batteries. The results show the effectiveness of our formalism to capture in a quantitatively reliable way the vibrational properties of systems with localized valence electrons.

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  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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