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Unexpected Trends in the Stability and Dissociation Kinetics of Lanthanide(III) Complexes with Cyclen-Based Ligands across the Lanthanide Series

31

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56

References

2020

Year

Abstract

We report a detailed study of the thermodynamic stability and dissociation kinetics of lanthanide complexes with two ligands containing a cyclen unit, a methyl group, a picolinate arm, and two acetate pendant arms linked to two nitrogen atoms of the macrocycle in either cis (1,4-H<sub>3</sub>DO2APA) or trans (1,7-H<sub>3</sub>DO2APA) positions. The stability constants of the Gd<sup>3+</sup> complexes with these two ligands are very similar, with log <i>K</i><sub>GdL</sub> values of 16.98 and 16.33 for the complexes of 1,4-H<sub>3</sub>DO2APA and 1,7-H<sub>3</sub>DO2APA, respectively. The stability constants of complexes with 1,4-H<sub>3</sub>DO2APA follow the usual trend, increasing from log <i>K</i><sub>LaL</sub> = 15.96 to log <i>K</i><sub>LuL</sub> = 19.21. However, the stability of [Ln(1,7-DO2APA)] complexes decreases from log <i>K</i> = 16.33 for Gd<sup>3+</sup> to 14.24 for Lu<sup>3+</sup>. The acid-catalyzed dissociation rates of the Gd<sup>3+</sup> complexes differ by a factor of ∼15, with rate constants (<i>k</i><sub>1</sub>) of 1.42 and 23.5 M<sup>-1</sup> s<sup>-1</sup> for [Gd(1,4-DO2APA)] and [Gd(1,7-DO2APA)], respectively. This difference is magnified across the lanthanide series to reach a 5 orders of magnitude higher <i>k</i><sub>1</sub> for [Yb(1,7-DO2APA)] (1475 M<sup>-1</sup> s<sup>-1</sup>) than for [Yb(1,4-DO2APA)] (5.79 × 10<sup>-3</sup> M<sup>-1</sup> s<sup>-1</sup>). The acid-catalyzed mechanism involves the protonation of a carboxylate group, followed by a cascade of proton-transfer events that result in the protonation of a nitrogen atom of the cyclen unit. Density functional theory calculations suggest a correlation between the strength of the Ln-O<sub>carboxylate</sub> bonds and the kinetic inertness of the complex, with stronger bonds providing more inert complexes. The <sup>1</sup>H NMR resonance of the coordinated water molecule in the [Yb(1,7-DO2APA)] complex at 176 ppm provides a sizable chemical exchange saturation transfer effect thanks to a slow water exchange rate of (15.9 ± 1.6) × 10<sup>3</sup> s<sup>-1</sup>.

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