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Inne
Role of Ionic Media in f–f Transitions, Stability, and the Structure of Ln(III) Coordination Compounds
Autorzy
Rok wydania
2026
Czasopismo
Numer woluminu
65
Strony
19221-19235
DOI
10.1021/acs.inorgchem.6c02135
Kolekcja
Język
Angielski
Typ publikacji
Artykuł
In this study, it was demonstrated that the composition of the ionic medium in solution may significantly influence not only the complex stability but also the spectroscopic properties of 4f electrons. The following reactions were investigated: [Er(EDTA)(H2O)2]− + OH– ⇄ [Er(EDTA)(OH)(H2O)]2– + H2O and [Er(EDTA)(OH)(H2O)]2– + M+ ⇄ M[Er(EDTA)(OH)(H2O)]− (where M = Na, K, [C(NH2)3] and [N(CH3)4]). To identify this effect, various physical methods were employed, including crystal X-ray diffraction, EDS, high-resolution UV–vis-NIR absorption spectroscopy, 89Y NMR spectroscopy, potentiometry, osmometry, and ICP OES, as well as theoretical approaches such as Specific Ion Interaction Theory and York regression. Finally, it was shown that kosmotropic inorganic cations (Na+, K+) stabilize hydroxy complexes more effectively than bulky chaotropic organic cations ([C(NH2)3]+ and [N(CH3)4]+). As a consequence, logβ increased from 1.73 ± 0.23 (at zero ionic strength) to 3.5 ± 0.2 at I = 4 mol·kg–1 in the presence of KCl. The potassium cations, for which the enthalpy of hydration is lower than that of Na+, more readily release water molecules from their nearest coordination sphere and, as a result, may interact more directly with the [Er(EDTA)(OH)(H2O)]2– complex anion than the other cations under study, forming stable ion pairs of K[Er(EDTA)(OH)(H2O)]−. These in turn exhibit spectroscopic features different from those of [Er(EDTA)(OH)(H2O)]2–.
Słowa kluczowe
Ions, Anions, Cations, Ligands, Solution chemistry
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Pełny tekst licencji: https://creativecommons.org/licenses/by/3.0/pl/legalcode
Adres publiczny
http://dx.doi.org/10.1021/acs.inorgchem.6c02135
Strona internetowa wydawcy
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