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Deutsches Institut für Urbanistik
Oldenbourg Wissenschaftsverlag
Walter de Gruyter
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Volker Neck, J. I. Kim

An electrostatic approach for the prediction of actinide complexation constants with inorganic ligands-application to carbonate complexes

A new semi-empirical approach is presented for the prediction of actinide complexation constants with inorganic ligands and applied to mononuclear carbonate complexes. The approach is based on an energy term describing the inter-ligand electrostatic repulsion. For a given metal ion M and ligand L, the formation constants log β°n of the complexes MLn are related by:
log β°n = n log β°1 - repEL (MLn) / RT ln 10
The electrostatic ligand repulsion term repEL is derived from the charge and inter-distance of ligands involved in a given complex and their angular distribution. Semi-empirical parameters are required to describe the effective electrostatic shielding between complexing ligand ions with the metal ion and hydration water molecules between them. These shielding coefficients are specific for the ligands, but independent of the actinide ion and its oxidation state. The shielding coefficients for carbonate ligands are determined from the known formation constants of Am(III) and Cm(III) carbonate complexes, and then used to calculate carbonate complexation constants for other actinides of different oxidation states. Excellent agreement is found between the calculated and experimental values for Np(V), U(VI), Pu(VI), and even for the transition metals Fe(II) and Cu(II). Based on known constants log β°4 and log β°5 for U(IV) and Pu(IV), the unknown constants log β°1, log β°2 and log β°3 are estimated.

Radiochimica Acta, Oldenbourg Wissenschaftsverlag

Print ISSN: 0033-8230
Volume: 88, 09/2000
Pages: 815

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