Reformulating time-dependent density functional theory with non-orthogonal localized molecular orbitals.


Autoria(s): Cui, G; Fang, W; Yang, W
Data(s)

14/01/2010

Formato

416 - 421

Identificador

http://www.ncbi.nlm.nih.gov/pubmed/20023819

Phys Chem Chem Phys, 2010, 12 (2), pp. 416 - 421

http://hdl.handle.net/10161/4117

1463-9084

Idioma(s)

ENG

en_US

Relação

Phys Chem Chem Phys

10.1039/b916688b

Physical Chemistry Chemical Physics

Tipo

Journal Article

Cobertura

England

Resumo

Time-dependent density functional theory (TDDFT) has broad application in the study of electronic response, excitation and transport. To extend such application to large and complex systems, we develop a reformulation of TDDFT equations in terms of non-orthogonal localized molecular orbitals (NOLMOs). NOLMO is the most localized representation of electronic degrees of freedom and has been used in ground state calculations. In atomic orbital (AO) representation, the sparsity of NOLMO is transferred to the coefficient matrix of molecular orbitals (MOs). Its novel use in TDDFT here leads to a very simple form of time propagation equations which can be solved with linear-scaling effort. We have tested the method for several long-chain saturated and conjugated molecular systems within the self-consistent charge density-functional tight-binding method (SCC-DFTB) and demonstrated its accuracy. This opens up pathways for TDDFT applications to large bio- and nano-systems.