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Estimation of Electronegativity Values of Elements in Different Valence States

The Journal of Physical Chemistry A · 2006 · Vol. 110(39) · pp. 11332–11337
Keyan LiDongfeng Xue

Abstract

The electronegativities of 82 elements in different valence states and with the most common coordination numbers have been quantitatively calculated on the basis of an effective ionic potential defined by the ionization energy and ionic radius. It is found that for a given cation, the electronegativity increases with increasing oxidation state and decreases with increasing coordination number. For the transition-metal cations, the electronegativity of the low-spin state is higher than that of the high-spin state. The ligand field stabilization, the first filling of p orbitals, the transition-metal contraction, and especially the lanthanide contraction are well-reflected by the relative values of our proposed electronegativity. This new scale is useful for us to estimate some quantities (e.g., the Lewis acid strength for the main group elements and the hydration free energy for the first transition series) and predict the structure and property of materials.

Machine Learning in Materials ScienceThermal and Kinetic AnalysisAdvanced Chemical Physics StudiesElectronegativityValence (chemistry)Ionic radiusChemistryFormal chargeLanthanide contractionIonic bondingIonization energyAtomic orbitalLanthanide
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References
The nature of the chemical bond—1992
Journal of Chemical Education · 1992 · 13,126 citations
Crystal radii and effective ionic radii of the rare earth ions
Journal of Solid State Chemistry · 1991 · 597 citations
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Estimation of Electronegativity Values of Elements in Different Valence States
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