Publication | Open Access
Synthesis and characterization of a novel aminopolycarboxylate complexant for efficient trivalent f-element differentiation: <i>N</i>-butyl-2-acetamide-diethylenetriamine-<i>N</i>,<i>N</i>′,<i>N</i>′′,<i>N</i>′′-tetraacetic acid
11
Citations
60
References
2017
Year
The novel metal ion complexant N-butyl-2-acetamide-diethylenetriamine-N,N',N'',N''-tetraacetic acid (DTTA-BuA) uses an amide functionalization to increase the total ligand acidity and attain efficient 4f/5f differentiation in low pH conditions. The amide, when located on the diethylenetriamine platform containing four acetate pendant arms maintains the octadentate coordination sphere for all investigated trivalent f-elements. This compact coordination environment inhibits the protonation of LnL<sup>-</sup> complexes, as indicated by lower K<sub>111</sub> constants relative to the corresponding protonation site of the free ligand. For actinide ions, the enhanced stability of AnL<sup>-</sup> lowers the K<sub>111</sub> for americium and curium beyond the aptitude of potentiometric detection. Density functional theory computations indicate the difference in the back-donation ability of Am<sup>3+</sup> and Eu<sup>3+</sup> f-orbitals is mainly responsible for stronger proton affinity of EuL<sup>-</sup> compared to AmL<sup>-</sup>. The measured stability constants for the formation of AmL<sup>-</sup> and CmL<sup>-</sup> complexes are consistently higher, relative to ML<sup>-</sup> complexes with lanthanides of similar charge density. When compared with the conventional aminopolycarboxylate diethylenetriamine pentaacetic acid (DTPA), the modified DTTA-BuA complexant features higher ligand acidity and the important An<sup>3+</sup>/Ln<sup>3+</sup> differentiation when deployed on a liquid-liquid distribution platform.
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