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Related Concept Videos

Coordination Compounds and Nomenclature02:54

Coordination Compounds and Nomenclature

In most main group element compounds, the valence electrons of the isolated atoms combine to form chemical bonds that satisfy the octet rule. For instance, the four valence electrons of carbon overlap with electrons from four hydrogen atoms to form CH4. The one valence electron leaves sodium and adds to the seven valence electrons of chlorine to form the ionic formula unit NaCl (Figure 1a). Transition metals do not normally bond in this fashion. They primarily form coordinate covalent bonds, a...
Properties of Transition Metals02:58

Properties of Transition Metals

Transition metals are defined as those elements that have partially filled d orbitals. As shown in Figure 1, the d-block elements in groups 3–12 are transition elements. The f-block elements, also called inner transition metals (the lanthanides and actinides), also meet this criterion because the d orbital is partially occupied before the f orbitals.
Oxidation Numbers03:14

Oxidation Numbers

In redox reactions, the transfer of electrons occurs between reacting species. Electron transfer is described by a hypothetical number called the oxidation number (or oxidation state). It represents the effective charge of an atom or element, which is assigned using a set of rules.
Ions and Ionic Charges03:27

Ions and Ionic Charges

In ordinary chemical reactions, the nucleus — which contains the protons and neutrons of each atom and thus identifies the element — remains unchanged. Electrons, however, can be added to atoms by transfer from other atoms, lost by transfer to other atoms, or shared with other atoms. The transfer and sharing of electrons among atoms govern the chemistry of the elements. During the formation of some compounds, atoms gain or lose electrons to form electrically charged particles called ions.
Ionic Bonding and Electron Transfer02:48

Ionic Bonding and Electron Transfer

Ions are atoms or molecules bearing an electrical charge. A cation (a positive ion) forms when a neutral atom loses one or more electrons from its valence shell, and an anion (a negative ion) forms when a neutral atom gains one or more electrons in its valence shell. Compounds composed of ions are called ionic compounds (or salts), and their constituent ions are held together by ionic bonds: electrostatic forces of attraction between oppositely charged cations and anions.
Coordination Number and Geometry02:57

Coordination Number and Geometry

For transition metal complexes, the coordination number determines the geometry around the central metal ion. Table 1 compares coordination numbers to molecular geometry. The most common structures of the complexes in coordination compounds are octahedral, tetrahedral, and square planar.

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Related Experiment Video

Updated: May 22, 2026

Thermochemical Studies of Ni(II) and Zn(II) Ternary Complexes Using Ion Mobility-Mass Spectrometry
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Thermochemical Studies of Ni(II) and Zn(II) Ternary Complexes Using Ion Mobility-Mass Spectrometry

Published on: June 8, 2022

Zn in the +III oxidation state.

Devleena Samanta1, Puru Jena

  • 1Department of Physics, Virginia Commonwealth University, Richmond, 23284, United States.

Journal of the American Chemical Society
|May 8, 2012
PubMed
Summary

Chemists have discovered that zinc can achieve a +III oxidation state by bonding with specific ligands. This finding challenges previous expectations and opens doors for new chemical reactions and discoveries.

Area of Science:

  • Inorganic Chemistry
  • Theoretical Chemistry
  • Quantum Chemistry

Background:

  • Group 12 elements (Zinc, Cadmium, Mercury) have historically been limited to a +II oxidation state.
  • Mercury's +IV oxidation state, attributed to relativistic effects, has been experimentally confirmed.
  • Zinc, being less massive, was not expected to exceed the +II oxidation state.

Purpose of the Study:

  • To investigate the theoretical possibility of achieving a +III oxidation state for Zinc.
  • To identify specific ligand properties that could stabilize higher oxidation states in Zinc.
  • To explore the potential for new chemical reactions through the discovery of novel oxidation states.

Main Methods:

  • Utilizing density functional theory (DFT) for computational modeling.

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  • Systematically studying the interaction between Zinc and ligands with varying electron affinities.
  • Analyzing the electronic structure and stability of Zinc complexes.
  • Main Results:

    • Demonstrated that Zinc can achieve a +III oxidation state.
    • Identified ligands with high electron affinities (Fluorine, Boron Dioxide, Gold Hexafluoride) as key to stabilizing Zn(+III).
    • Showcased a progressive stabilization of Zn(+III) with increasing ligand electron affinity (3.4 eV to 8.4 eV).

    Conclusions:

    • The theoretical prediction and computational evidence support the existence of Zinc in a +III oxidation state.
    • The choice of ligands with high electron affinity is crucial for realizing higher oxidation states in elements like Zinc.
    • This discovery has significant implications for developing new synthetic routes and advancing inorganic chemistry.