Improvements to the Density-Functional Tight-Binding method: new, efficient parametrization schemes and prospects of a more precise self-consistency
File | Description | Size | Format | |
---|---|---|---|---|
00102778-1.pdf | 851.82 kB | Adobe PDF | View/Open |
Other Titles: | Verbesserungen der Density-Functional Tight-Binding Methode: neue, effiziente Schemata der Parametrisierung und Ausblick auf eine präzisere Selbstkonsistenz | Authors: | Bodrog, Zoltán | Supervisor: | Bálint, Aradi | 1. Expert: | Frauenheim, Thomas ![]() |
Experts: | Gotthard, Seifert | Abstract: | After an introduction to the Density-Functional Tight-Binding (DFTB, a pairwise, LCAO-based approximation to Kohn Sham DFT) method, I deal with improving the treatment of the so-called repulsive energy. This pairwise, quasi-classical interaction energy of atoms covers the difference between calculated Kohn Sham energy and total DFTB energy. Parametrization of DFTB means the time-consuming task of optimizing repulsive potentials for every atomic type pair. To ease this task, I present an automaton that optimizes for different energetical targets, with a few example applications. I also propose the first steps of calculating repulsive potentials, instead of fitting them, and give the first preliminary results of this approach. Last, I propose several pieces of enhancement to the Self-Consistent-Charges (SCC) regime, the second-order extension of DFTB based on effective interactions between point-like atomic charge fluctuations. First, I derive a multipole extension of SCC, and second, I propose some semiempirical improvements to effective interaction profiles between atomic Mulliken charges. |
Keywords: | DFT; tight binding; DFTB; SCC-DFTB; LCAO; parametrization; second order | Issue Date: | 23-Mar-2012 | Type: | Dissertation | Secondary publication: | no | URN: | urn:nbn:de:gbv:46-00102778-10 | Institution: | Universität Bremen | Faculty: | Fachbereich 01: Physik/Elektrotechnik (FB 01) |
Appears in Collections: | Dissertationen |
Page view(s)
300
checked on Apr 3, 2025
Download(s)
93
checked on Apr 3, 2025
Google ScholarTM
Check
Items in Media are protected by copyright, with all rights reserved, unless otherwise indicated.