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宽带电子顺磁共振波谱学的三重态:一水合醋酸铜的多频分析。

Broadband EPR Spectroscopy of the Triplet State: Multi-Frequency Analysis of Copper Acetate Monohydrate.

机构信息

Department of Biotechnology, Delft University of Technology, Building 58, Van der Maasweg 9, 2629 HZ Delft, The Netherlands.

出版信息

Int J Mol Sci. 2023 Sep 30;24(19):14793. doi: 10.3390/ijms241914793.

Abstract

Electron paramagnetic resonance spectroscopy is a long-standing method for the exploration of electronic structures of transition ion complexes. The difficulty of its analysis varies considerably, not only with the nature of the spin system, but more so with the relative magnitudes of the magnetic interactions to which the spin is subject, where particularly challenging cases ensue when two interactions are of comparable magnitude. A case in point is the triplet system S = 1 of coordination complexes with two unpaired electrons when the electronic Zeeman interaction and the electronic zero-field interaction are similar in strength. This situation occurs in the X-band spectra of the thermally excited triplet state of dinuclear copper(II) complexes, exemplified by copper acetate monohydrate. In this study, applicability of the recently developed low-frequency broadband EPR spectrometer to S = 1 systems is investigated on the analysis of multi-frequency, 0.5-16 GHz, data from [Cu(CHCOO)HO]. Global fitting affords the spin Hamiltonian parameters = 2.365 ± 0.008; = 2.055 ± 0.010; = 2.077 ± 0.005; = 64 gauss; = 0.335 ± 0.002 cm; = 0.0105 ± 0.0003 cm. The latter two define zero-field absorptions at ca. 630, 7730, and 10,360 MHz, which show up in the spectra as one half of a sharpened symmetrical line. Overall, the EPR line shape is Lorentzian, reflecting spin-lattice relaxation, which is a combination of an unusual, essentially temperature-independent, inverted Orbach process via the S = 0 ground state, and a Raman process proportional to T. Other broadening mechanisms are limited to at best minor contributions from a distribution in E values, and from dipolar interaction with neighboring copper pairs. Monitoring of a first-order double-quantum transition between 8 and 35 GHz shows a previously unnoticed very complex line shape behavior, which should be the subject of future research.

摘要

电子顺磁共振波谱学是一种用于探索过渡离子配合物电子结构的长期方法。其分析的难度变化很大,不仅取决于自旋系统的性质,而且更取决于自旋所受磁相互作用的相对大小,特别是当两个相互作用的大小相当时,情况会变得极具挑战性。一个典型的例子是具有两个未配对电子的配位配合物的三重态系统 S = 1,其中电子塞曼相互作用和电子零场相互作用强度相似。这种情况发生在双核铜 (II) 配合物热激发三重态的 X 波段光谱中,以一水合醋酸铜为例。在这项研究中,研究了最近开发的低频宽带 EPR 光谱仪在分析来自 [Cu(CHCOO)HO] 的多频、0.5-16 GHz 数据时对 S = 1 系统的适用性。全局拟合得出自旋哈密顿参数为 = 2.365 ± 0.008; = 2.055 ± 0.010; = 2.077 ± 0.005; = 64 高斯; = 0.335 ± 0.002 厘米; = 0.0105 ± 0.0003 厘米。后两个参数定义了约 630、7730 和 10360 MHz 处的零场吸收,这些吸收在光谱中表现为一个尖锐对称线的一半。总体而言,EPR 线宽是洛伦兹型的,反映了自旋晶格弛豫,这是一种通过 S = 0 基态的不寻常、基本上与温度无关的倒奥巴赫过程与拉曼过程的组合,拉曼过程与 T 成正比。其他展宽机制仅限于 E 值分布和与相邻铜对的偶极相互作用的最小贡献。对 8 到 35 GHz 之间的一级双量子跃迁的监测显示出以前未注意到的非常复杂的线宽行为,这应该是未来研究的主题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d319/10572876/080a090404e7/ijms-24-14793-g001.jpg

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