Self-consistent-charge density-functional tight-binding method for simulations of complex materials properties
Marcus Elstner, Dirk V. Porezag, G. Jungnickel, J. Elsner, Michael Haugk, Thomas Frauenheim, Sándor Suhai, Gotthard Seifert
Physical review. B, Condensed matter · 1998 · 4,215 citations
Abstract
We outline details about an extension of the tight-binding (TB) approach to improve total energies, forces, and transferability. The method is based on a second-order expansion of the Kohn-Sham total energy in density-functional theory (DFT) with respect to charge density fluctuations. The zeroth order approach is equivalent to a common standard non-self-consistent (TB) scheme, while at second order a transparent, parameter-free, and readily calculable expression for generalized Hamiltonian matrix elements may be derived. These are modified by a self-consistent redistribution of Mulliken charges (SCC). Besides the usual ``band structure'' and short-range repulsive terms the final approximate Kohn-Sham energy additionally includes a Coulomb interaction between charge fluctuations. At large distances this accounts for long-range electrostatic forces between two point charges and approximately includes self-interaction contributions of a given atom if the charges are located at one and the same atom. We apply the new SCC scheme to problems where deficiencies within the non-SCC standard TB approach become obvious. We thus considerably improve transferability.
Cite this paper
Elstner, M., Porezag, D. V., Jungnickel, G., Elsner, J., Haugk, M., Frauenheim, T., Suhai, S., & Seifert, G. (1998). Self-consistent-charge density-functional tight-binding method for simulations of complex materials properties. Physical Review. B, Condensed Matter, 58(11), 7260–7268. https://doi.org/10.1103/physrevb.58.7260
Read it with every claim anchored
Add this paper to a project, ask questions of it, and get answers that point to the exact passage.
Start freeRelated papers
- Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set1996
- The electronic properties of graphene2009
- Accurate spin-dependent electron liquid correlation energies for local spin density calculations: a critical analysis1980
- Quantum Spin Hall Effect in Graphene2005
- Electronic properties of two-dimensional systems1982
Metadata from OpenAlex (CC0). Citations are generated from the published record.