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      Complete phase diagram of rare-earth nickelates from first-principles

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          Electron-energy-loss spectra and the structural stability of nickel oxide: An LSDA+U study

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            Phonons and related properties of extended systems from density-functional perturbation theory

            This article reviews the current status of lattice-dynamical calculations in crystals, using density-functional perturbation theory, with emphasis on the plane-wave pseudo-potential method. Several specialized topics are treated, including the implementation for metals, the calculation of the response to macroscopic electric fields and their relevance to long wave-length vibrations in polar materials, the response to strain deformations, and higher-order responses. The success of this methodology is demonstrated with a number of applications existing in the literature.
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              Maximally-localized generalized Wannier functions for composite energy bands

              We discuss a method for determining the optimally-localized set of generalized Wannier functions associated with a set of Bloch bands in a crystalline solid. By ``generalized Wannier functions'' we mean a set of localized orthonormal orbitals spanning the same space as the specified set of Bloch bands. Although we minimize a functional that represents the total spread sum_n [ _n - _n^2 ] of the Wannier functions in real space, our method proceeds directly from the Bloch functions as represented on a mesh of k-points, and carries out the minimization in a space of unitary matrices U_mn^k describing the rotation among the Bloch bands at each k-point. The method is thus suitable for use in connection with conventional electronic-structure codes. The procedure also returns the total electric polarization as well as the location of each Wannier center. Sample results for Si, GaAs, molecular C2H4, and LiCl will be presented.
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                Author and article information

                Journal
                npj Quantum Materials
                npj Quant Mater
                Springer Nature
                2397-4648
                December 2017
                April 19 2017
                : 2
                : 1
                Article
                10.1038/s41535-017-0024-9
                e09ef91b-d493-47d5-b315-0375419f7ee0
                © 2017

                http://creativecommons.org/licenses/by/4.0

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