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核磁共振在频域和时域揭示的[Gd(AAZTA)(HO)]螯合物的惊人复杂性

Surprising Complexity of the [Gd(AAZTA)(HO)] Chelate Revealed by NMR in the Frequency and Time Domains.

作者信息

Lalli Daniela, Carniato Fabio, Tei Lorenzo, Platas-Iglesias Carlos, Botta Mauro

机构信息

Dipartimento di Scienze e Innovazione Tecnologica, Università del Piemonte Orientale "A. Avogadro", Viale T. Michel 11, 15121 Alessandria, Italy.

Centro de Investigacións Científicas Avanzadas (CICA) and Departamento de Química, Facultade de Ciencias, Universidade da Coruña, 15071 A Coruña, Galicia, Spain.

出版信息

Inorg Chem. 2022 Jan 10;61(1):496-506. doi: 10.1021/acs.inorgchem.1c03194. Epub 2021 Dec 10.

Abstract

Typically, Ln(III) complexes are isostructural along the series, which enables studying one particular metal chelate to derive the structural features of the others. This is not the case for [Ln(AAZTA)(HO)] ( = 1, 2) systems, where structural variations along the series cause changes in the hydration number of the different metal complexes, and in particular the loss of one of the two metal-coordinated water molecules between Ho and Er. Herein, we present a H field-cycling relaxometry and O NMR study that enables accessing the different exchange dynamics processes involving the two water molecules bound to the metal center in the [Gd(AAZTA)(HO)] complex. The resulting picture shows one Gd-bound water molecule with an exchange rate ∼6 times faster than that of the other, due to a longer metal-water distance, in accordance with density functional theory (DFT) calculations. The substitution of the more labile water molecule with a fluoride anion in a diamagnetic-isostructural analogue of the Gd-complex, [Y(AAZTA)(HO)], allows us to follow the chemical exchange process by high-resolution NMR and to describe its thermodynamic behavior. Taken together, the variety of tools offered by NMR (including high-resolution H, F NMR as a function of temperature, H longitudinal relaxation rates vs , and O transverse relaxation rates vs ) provides a complete description of the structure and exchange dynamics of these Ln-complexes along the series.

摘要

通常情况下,镧系(III)配合物在整个系列中具有同构结构,这使得研究一种特定的金属螯合物就能推导出其他螯合物的结构特征。对于[Ln(AAZTA)(HO)](n = 1, 2)体系则并非如此,在该体系中,整个系列的结构变化会导致不同金属配合物的水合数发生变化,特别是在钬(Ho)和铒(Er)之间,两个与金属配位的水分子之一会失去。在此,我们展示了一项磁场循环弛豫测量和氧核磁共振研究,该研究能够探究[Gd(AAZTA)(HO)]配合物中与金属中心结合的两个水分子所涉及的不同交换动力学过程。结果表明,由于金属 - 水距离更长,一个与钆(Gd)结合的水分子的交换速率比另一个快约6倍,这与密度泛函理论(DFT)计算结果一致。在钆配合物的抗磁性同构类似物[Y(AAZTA)(HO)]中,用氟离子取代更不稳定的水分子,这使我们能够通过高分辨率核磁共振跟踪化学交换过程,并描述其热力学行为。综合来看,核磁共振提供的各种工具(包括作为温度函数的高分辨率氢、氟核磁共振,氢纵向弛豫率与……的关系,以及氧横向弛豫率与……的关系)完整地描述了这些镧系配合物在整个系列中的结构和交换动力学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c662/8753608/2e4bd5cae957/ic1c03194_0012.jpg

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