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Valence Bond Theory02:42

Valence Bond Theory

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Coordination compounds and complexes exhibit different colors, geometries, and magnetic behavior, depending on the metal atom/ion and ligands from which they are composed. In an attempt to explain the bonding and structure of coordination complexes, Linus Pauling proposed the valence bond theory, or VBT, using the concepts of hybridization and the overlapping of the atomic orbitals. According to VBT, the central metal atom or ion (Lewis acid) hybridizes to provide empty orbitals of suitable...
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Hybridization of Atomic Orbitals I03:24

Hybridization of Atomic Orbitals I

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The mathematical expression known as the wave function, ψ, contains information about each orbital and the wavelike properties of electrons in an isolated atom. When atoms are bound together in a molecule, the wave functions combine to produce new mathematical descriptions that have different shapes. This process of combining the wave functions for atomic orbitals is called hybridization and is mathematically accomplished by the linear combination of atomic orbitals. The new orbitals that...
47.0K
Electron Configurations02:46

Electron Configurations

16.6K
Electron configurations and orbital diagrams can be determined by applying the Aufbau principle (each added electron occupies the subshell of lowest energy available), Pauli exclusion principle (no two electrons can have the same set of four quantum numbers), and Hund’s rule of maximum multiplicity (whenever possible, electrons retain unpaired spins in degenerate orbitals).
The relative energies of the subshells determine the order in which atomic orbitals are filled (1s, 2s, 2p, 3s, 3p,...
16.6K
Crystal Field Theory - Tetrahedral and Square Planar Complexes02:46

Crystal Field Theory - Tetrahedral and Square Planar Complexes

42.4K
Tetrahedral Complexes
Crystal field theory (CFT) is applicable to molecules in geometries other than octahedral. In octahedral complexes, the lobes of the dx2−y2 and dz2 orbitals point directly at the ligands. For tetrahedral complexes, the d orbitals remain in place, but with only four ligands located between the axes. None of the orbitals points directly at the tetrahedral ligands. However, the dx2−y2 and dz2 orbitals (along the Cartesian axes) overlap with the ligands less than the dxy,...
42.4K
Colors and Magnetism03:02

Colors and Magnetism

11.6K
Color in Coordination Complexes
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human...
11.6K
Valence Bond Theory and Hybridized Orbitals02:38

Valence Bond Theory and Hybridized Orbitals

19.3K
According to valence bond theory, a covalent bond results when: (1) an orbital on one atom overlaps an orbital on a second atom, and (2) the single electrons in each orbital combine to form an electron pair. The strength of a covalent bond depends on the extent of overlap of the orbitals involved. Maximum overlap is possible when the orbitals overlap on a direct line between the two nuclei.
A σ bond (single bond in a Lewis structure) is a covalent bond in which the electron density is...
19.3K

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Related Experiment Video

Updated: Jun 26, 2025

Quantitative Atomic-Site Analysis of Functional Dopants/Point Defects in Crystalline Materials by Electron-Channeling-Enhanced Microanalysis
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Quantitative Atomic-Site Analysis of Functional Dopants/Point Defects in Crystalline Materials by Electron-Channeling-Enhanced Microanalysis

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orbital ordering patterns in KBF (B = Sc, Ti, Fe, Co) perovskites.

Fabien Pascale1, Philippe D'Arco2, Sami Mustapha3

  • 1Université de Lorraine-Nancy, CNRS, LEMTA, Nancy, France.

Journal of Computational Chemistry
|May 14, 2024
PubMed
Summary

Orbital ordering in transition metal perovskites shows similar energy and volume dependencies across different patterns. Most configurations are occupied even at low temperatures, suggesting potential for studying larger systems.

Keywords:
DFT simulationJahn‐Teller effectK(Sc, Ti, Fe, Co)Fferromagnetic and anti‐ferromagneticorbital ordering patterns

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Area of Science:

  • Solid State Chemistry
  • Quantum Mechanics
  • Materials Science

Background:

  • Transition metal perovskites exhibit complex orbital ordering (OO) due to partially occupied d-orbitals.
  • The coupling between B-site transition metals in KBF perovskites leads to numerous possible OO patterns.

Purpose of the Study:

  • Investigate the quantum mechanical behavior of orbital ordering in KBF perovskites (B = Sc, Ti, Fe, Co).
  • Characterize the energy landscape and structural implications of various OO patterns.
  • Develop a predictive model for orbital ordering in larger supercells.

Main Methods:

  • Quantum mechanical calculations using a Gaussian type basis set and B3LYP hybrid functional.
  • Supercell approach with 40 atoms to model KBF perovskites.
  • Classification of numerous OO patterns into 162 equivalent configuration classes.

Main Results:

  • All four KBF perovskite compounds displayed similar energy and volume dependencies on the OO pattern.
  • The energy spanned by different OO configurations was small (1-2 mE per formula unit).
  • A linear model based on relative orbital order in adjacent sites accurately reproduced the energy order.

Conclusions:

  • Most orbital ordering configurations in these KBF perovskites are likely occupied at room and low temperatures.
  • The developed linear model shows promise for studying orbital ordering in larger and more complex supercells.
  • The findings provide insights into the electronic and structural properties of transition metal perovskites.