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Predicting Near Edge X-ray Absorption Spectra with the Spin-Free Exact-Two-Component Hamiltonian and Orthogonality Constrained Density Functional Theory
- Source :
- Journal of Chemical Theory and Computation. 12:144-156
- Publication Year :
- 2015
- Publisher :
- American Chemical Society (ACS), 2015.
-
Abstract
- Orthogonality constrained density functional theory (OCDFT) provides near-edge X-ray absorption (NEXAS) spectra of first-row elements within one electronvolt from experimental values. However, with increasing atomic number, scalar relativistic effects become the dominant source of error in a nonrelativistic OCDFT treatment of core-valence excitations. In this work we report a novel implementation of the spin-free exact-two-component (X2C) one-electron treatment of scalar relativistic effects and its combination with a recently developed OCDFT approach to compute a manifold of core-valence excited states. The inclusion of scalar relativistic effects in OCDFT reduces the mean absolute error of second-row elements core-valence excitations from 10.3 to 2.3 eV. For all the excitations considered, the results from X2C calculations are also found to be in excellent agreement with those from low-order spin-free Douglas-Kroll-Hess relativistic Hamiltonians. The X2C-OCDFT NEXAS spectra of three organotitanium complexes (TiCl4, TiCpCl3, TiCp2Cl2) are in very good agreement with unshifted experimental results and show a maximum absolute error of 5-6 eV. In addition, a decomposition of the total transition dipole moment into partial atomic contributions is proposed and applied to analyze the nature of the Ti pre-edge transitions in the three organotitanium complexes.
- Subjects :
- Physics
010304 chemical physics
Absorption spectroscopy
Electronvolt
010402 general chemistry
computer.software_genre
01 natural sciences
Spectral line
0104 chemical sciences
Computer Science Applications
symbols.namesake
Quantum mechanics
Excited state
0103 physical sciences
symbols
Density functional theory
Atomic number
Data mining
Physical and Theoretical Chemistry
Relativistic quantum chemistry
Hamiltonian (quantum mechanics)
computer
Subjects
Details
- ISSN :
- 15499626 and 15499618
- Volume :
- 12
- Database :
- OpenAIRE
- Journal :
- Journal of Chemical Theory and Computation
- Accession number :
- edsair.doi.dedup.....b09759f824ca10e797a6b7debcfd42a4
- Full Text :
- https://doi.org/10.1021/acs.jctc.5b00817