Scinovex
article Open AccessTop 1% cited

Intrinsic Atomic Orbitals: An Unbiased Bridge between Quantum Theory and Chemical Concepts

Journal of Chemical Theory and Computation · 2013 · Vol. 9(11) · pp. 4834–4843
Gerald Knizia

Abstract

Modern quantum chemistry can make quantitative predictions on an immense array of chemical systems. However, the interpretation of those predictions is often complicated by the complex wave function expansions used. Here we show that an exceptionally simple algebraic construction allows for defining atomic core and valence orbitals, polarized by the molecular environment, which can exactly represent self-consistent field wave functions. This construction provides an unbiased and direct connection between quantum chemistry and empirical chemical concepts, and can be used, for example, to calculate the nature of bonding in molecules, in chemical terms, from first principles. In particular, we find consistency with electronegativities (χ), C 1s core-level shifts, resonance substituent parameters (σR), Lewis structures, and oxidation states of transition-metal complexes.

Molecular spectroscopy and chiralityAdvanced Chemical Physics StudiesSpectroscopy and Quantum Chemical StudiesValence bond theoryAtomic orbitalMolecular orbital theoryWave functionQuantum chemicalQuantum chemistryComputer scienceMolecular orbitalQuantum mechanicsPhysics
Citations
1,124
FWCI
11.29
field-weighted impact
References
102
Percentile
99%
vs. same field & year
Citations per year
References
Bond Orbitals from Chemical Valence Theory
The Journal of Physical Chemistry A · 2008 · 678 citations
Towards an unified hydrogen-bond theory
Journal of Molecular Structure · 2000 · 674 citations
Generalized Gradient Approximation Made Simple
Physical Review Letters · 1996 · 205,888 citations
Natural hybrid orbitals
Journal of the American Chemical Society · 1980 · 4,923 citations
Natural population analysis
The Journal of Chemical Physics · 1985 · 9,725 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.