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Formation of CaUO2(CO3)32− and Ca2UO2(CO3)3(aq) complexes at variable temperatures (10–70 °C)Formation of CaUO2(CO3)(3)(2-) and Ca2UO2(CO3)(3)(aq) complexes at variable temperatures (10-70 degrees C)

Other Titles
Formation of CaUO2(CO3)(3)(2-) and Ca2UO2(CO3)(3)(aq) complexes at variable temperatures (10-70 degrees C)
Authors
Jo, YongheumKirishima, AkiraKimuro, ShingoKim, Hee-KyungYun, Jong-Il
Issue Date
May-2019
Publisher
ROYAL SOC CHEMISTRY
Citation
DALTON TRANSACTIONS, v.48, no.20, pp.6942 - 6950
Indexed
SCIE
SCOPUS
Journal Title
DALTON TRANSACTIONS
Volume
48
Number
20
Start Page
6942
End Page
6950
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/189464
DOI
10.1039/c9dt01174a
ISSN
1477-9226
Abstract
The ternary complexation of calcium uranyl tricarbonate species, CaUO2(CO3)(3)(2-) and Ca2UO2(CO3)(3)(aq), which are the predominant U(vi) complexes in groundwater and seawater, was investigated at variable temperatures from 10 to 70 degrees C. Time-resolved laser fluorescence spectroscopy (TRLFS), calcium ion-selective electrode potentiometry, and ultraviolet/visible (UV/Vis) absorption spectroscopy were complementarily employed to determine the formation constants (logK(x13), x = 1 and 2 for mono- and dicalcium complexes, respectively). at infinite dilution (zero ionic strength) was determined by correction using specific ion interaction theory (SIT), and an increasing tendency of with temperature was observed. In addition, the molar enthalpy of complexation (H-r(m)) was measured by calorimetry at 25 degrees C. Based on thermodynamic data obtained in this work, the approximation models were examined for the prediction of the temperature effect on the complexation, and the constant enthalpy approximation with the chemical complexation reaction modified to an isoelectric reaction showed a satisfactory prediction of in the temperature range of 10-70 degrees C. Finally, the results of U(vi) speciation in groundwater indicated that the dominance of calcium uranyl tricarbonate complexes would be weakened at elevated temperatures by the strongly enhanced hydrolysis of U(vi).
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