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Phys. Rev. B 62, 7071–7083 (2000)

Application of time-dependent density-functional theory to the dielectric function of various nonmetallic crystals

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F. Kootstra, P. L. de Boeij, and J. G. Snijders
Theoretical Chemistry, Materials Science Centre, Rijksuniversiteit Groningen, Nijenborgh 4, 9747 AG Groningen, The Netherlands

Received 14 December 1999; revised 24 March 2000; published in the issue dated 15 September 2000

The dielectric function of a range of nonmetallic crystals of various lattice types is studied by means of a real-space and full-potential time-dependent density-functional method within the adiabatic local-density approximation. Results for the dielectric constant ε (at optical frequencies) are given for crystals in the sodium chloride, the fluoride, the wurtzite, the diamond, and the zinc-blende lattice structure. The frequency-dependent dielectric function ε(ω) for the crystals in the diamond and zinc-blende lattice structure are also presented. We compare our calculated results with experimental data and other theoretical investigations. Our results for the dielectric constants ε and the dielectric functions ε(ω) are in good agreement with the experimental values. The accuracy of the results is comparable to the one which is commonly found for time-dependent density-functional theory calculations on molecular systems. On average we find a deviation of 4–5 % from experiment for the group IV and III-V compounds in the wurtzite, zinc-blende and diamond lattice structure, 8–9 % for the II-VI and I-VII compounds in the zinc-blende and sodium chloride lattice structure, and up to 14% deviation for the fluoride lattice structure. The spectral features of the dielectric functions ε(ω) appear in the calculations at somewhat too low energies compared to experiment.

© 2000 The American Physical Society

URL:
http://link.aps.org/doi/10.1103/PhysRevB.62.7071
DOI:
10.1103/PhysRevB.62.7071
PACS:
78.20.Ci