| Literature DB >> 25747055 |
Jörg Kussmann1, Arne Luenser1, Matthias Beer1, Christian Ochsenfeld1.
Abstract
An analytical method to calculate the molecular vibrational Hessian matrix at the self-consistent field level is presented. By analysis of the multipole expansions of the relevant derivatives of Coulomb-type two-electron integral contractions, we show that the effect of the perturbation on the electronic structure due to the displacement of nuclei decays at least as r(-2) instead of r(-1). The perturbation is asymptotically local, and the computation of the Hessian matrix can, in principle, be performed with O(N) complexity. Our implementation exhibits linear scaling in all time-determining steps, with some rapid but quadratic-complexity steps remaining. Sample calculations illustrate linear or near-linear scaling in the construction of the complete nuclear Hessian matrix for sparse systems. For more demanding systems, scaling is still considerably sub-quadratic to quadratic, depending on the density of the underlying electronic structure.Mesh:
Substances:
Year: 2015 PMID: 25747055 DOI: 10.1063/1.4908131
Source DB: PubMed Journal: J Chem Phys ISSN: 0021-9606 Impact factor: 3.488