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      Missing Fe: hydrogenated iron nanoparticles

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      Monthly Notices of the Royal Astronomical Society: Letters
      Oxford University Press (OUP)

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          Electronic structure calculations with GPAW: a real-space implementation of the projector augmented-wave method.

          Electronic structure calculations have become an indispensable tool in many areas of materials science and quantum chemistry. Even though the Kohn-Sham formulation of the density-functional theory (DFT) simplifies the many-body problem significantly, one is still confronted with several numerical challenges. In this article we present the projector augmented-wave (PAW) method as implemented in the GPAW program package (https://wiki.fysik.dtu.dk/gpaw) using a uniform real-space grid representation of the electronic wavefunctions. Compared to more traditional plane wave or localized basis set approaches, real-space grids offer several advantages, most notably good computational scalability and systematic convergence properties. However, as a unique feature GPAW also facilitates a localized atomic-orbital basis set in addition to the grid. The efficient atomic basis set is complementary to the more accurate grid, and the possibility to seamlessly switch between the two representations provides great flexibility. While DFT allows one to study ground state properties, time-dependent density-functional theory (TDDFT) provides access to the excited states. We have implemented the two common formulations of TDDFT, namely the linear-response and the time propagation schemes. Electron transport calculations under finite-bias conditions can be performed with GPAW using non-equilibrium Green functions and the localized basis set. In addition to the basic features of the real-space PAW method, we also describe the implementation of selected exchange-correlation functionals, parallelization schemes, ΔSCF-method, x-ray absorption spectra, and maximally localized Wannier orbitals.
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            The Physics and Chemistry of the Interstellar Medium

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              A UNIFIED REPRESENTATION OF GAS-PHASE ELEMENT DEPLETIONS IN THE INTERSTELLAR MEDIUM

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                Author and article information

                Journal
                Monthly Notices of the Royal Astronomical Society: Letters
                Mon. Not. R. Astron. Soc: Lett.
                Oxford University Press (OUP)
                1745-3925
                1745-3933
                December 02 2016
                March 21 2017
                March 21 2017
                March 21 2017
                March 21 2017
                November 04 2016
                : 466
                : 1
                : L14-L18
                Article
                10.1093/mnrasl/slw226
                43e07fe9-c561-4675-8da3-cb02edc8c4ac
                © 2016
                History

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