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Atoms, molecules, solids, and surfaces: Applications of the generalized gradient approximation for exchange and correlation.

TLDR
A way is found to visualize and understand the nonlocality of exchange and correlation, its origins, and its physical effects as well as significant interconfigurational and interterm errors remain.
Abstract
Generalized gradient approximations (GGA's) seek to improve upon the accuracy of the local-spin-density (LSD) approximation in electronic-structure calculations. Perdew and Wang have developed a GGA based on real-space cutoff of the spurious long-range components of the second-order gradient expansion for the exchange-correlation hole. We have found that this density functional performs well in numerical tests for a variety of systems: (1) Total energies of 30 atoms are highly accurate. (2) Ionization energies and electron affinities are improved in a statistical sense, although significant interconfigurational and interterm errors remain. (3) Accurate atomization energies are found for seven hydrocarbon molecules, with a rms error per bond of 0.1 eV, compared with 0.7 eV for the LSD approximation and 2.4 eV for the Hartree-Fock approximation. (4) For atoms and molecules, there is a cancellation of error between density functionals for exchange and correlation, which is most striking whenever the Hartree-Fock result is furthest from experiment. (5) The surprising LSD underestimation of the lattice constants of Li and Na by 3--4 % is corrected, and the magnetic ground state of solid Fe is restored. (6) The work function, surface energy (neglecting the long-range contribution), and curvature energy of a metallic surface are all slightly reduced in comparison with LSD. Taking account of the positive long-range contribution, we find surface and curvature energies in good agreement with experimental or exact values. Finally, a way is found to visualize and understand the nonlocality of exchange and correlation, its origins, and its physical effects.

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Journal ArticleDOI

Work function changes induced by deposition of ultrathin dielectric films on metals: A theoretical analysis

TL;DR: In this paper, the authors analyzed the effect of three-layer insulating materials such as LiF, NaCl, MgO, CaS, and BaO on various (001) metal surfaces.
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Theoretical study of PTCDA adsorbed on the coinage metal surfaces, Ag(111), Au(111) and Cu(111)

TL;DR: In this article, the authors carried out density functional theory (DFT) calculations to investigate to what extent these trends can be rationalized on a theoretical basis, and they used different density functionals (DF) including a fully non-local van der Waals (vdW) DF capable of describing dispersion interactions.
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Reactivity of chemisorbed oxygen atoms and their catalytic consequences during CH4-O2 catalysis on supported Pt clusters.

TL;DR: Kinetic and isotopic data and density functional theory treatments provide evidence for the elementary steps and the active site requirements involved in the four distinct kinetic regimes observed during CH(4) oxidation reactions using O(2), H(2)O, or CO(2)-derived intermediates as oxidants on Pt clusters.
Journal ArticleDOI

Theoretical analysis of highly spin-polarized transport in the iron nitride Fe 4 N

TL;DR: In this article, the authors theoretically analyzed the spin polarization ratio of the conductivity of the bulk of a perovskite-type structure, in which N is located at the body center position of the fcc-Fe.
Journal ArticleDOI

Generalized stacking fault energy, ideal strength and twinnability of dilute Mg-based alloys: A first-principles study of shear deformation

TL;DR: In this article, the generalized stacking fault (GSF) energy curves of dilute Mg-based alloys of type Mg 95 X were investigated using pure alias shear deformations on the basal (0, 0, 0) plane and along the [ 1 0 1 ¯ 0 ] direction of the hexagonal close-packed (hcp) lattice.
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