Department of Chemistry, Washington University in St. Louis, One Brookings Hall, Campus Box 1134, St. Louis, Missouri 63130-4899, United States.
Department of Chemistry, University of Minnesota, 207 Pleasant Avenue SE, Minneapolis, Minnesota 55455, United States.
Inorg Chem. 2021 Apr 5;60(7):5217-5223. doi: 10.1021/acs.inorgchem.1c00216. Epub 2021 Mar 18.
With the aim of drawing comparisons to the highly reactive complex LCuOH (L = bis(2,6-diisopropylphenylcarboxamido)pyridine), the complexes [BuN][LCuSR] (R = H or Ph) were prepared, characterized by spectroscopy and X-ray crystallography, and oxidized at low temperature to generate the species assigned as LCuSR on the basis of spectroscopy and theory. Consistent with the smaller electronegativity of S versus O, redox potentials for the LCuSR couples were ∼50 mV lower than for LCuOH, and the rates of the proton-coupled electron transfer reactions of LCuSR with anhydrous 1-hydroxy-2,2,6,6-tetramethyl-piperidine at -80 °C were significantly slower (by more than 100 times) than the same reaction of LCuOH. Density functional theory (DFT) and time-dependent DFT calculations on LCuZ (Z = OH, SH, SPh) revealed subtle differences in structural and UV-visible parameters. Further comparison to complexes with Z = F, Cl, and Br using complete active space (CAS) self-consistent field and localized orbital CAS configuration interaction calculations along with a valence-bond-like interpretation of the wave functions showed differences with previously reported results ( 2020, 142, 8514), and argue for a consistent electronic structure across the entire series of complexes, rather than a change in the nature of the ligand field arrangement for Z = F.
为了与高反应性的复杂配合物 LCuOH(L = 双(2,6-二异丙基苯甲酰胺基)吡啶)进行比较,制备了配合物 [BuN][LCuSR](R = H 或 Ph),通过光谱和 X 射线晶体学进行了表征,并在低温下氧化,基于光谱和理论生成了被分配为 LCuSR 的物种。与 S 相对于 O 的较小电负性一致,LCuSR 配合物的氧化还原电位比 LCuOH 低约 50 mV,并且 LCuSR 与无水 1-羟基-2,2,6,6-四甲基哌啶在 -80°C 下的质子耦合电子转移反应的速率比 LCuOH 的相同反应慢得多(超过 100 倍)。密度泛函理论(DFT)和 LCuZ(Z = OH、SH、SPh)的时间相关 DFT 计算揭示了结构和紫外可见参数的细微差异。使用完整活性空间(CAS)自洽场和局域轨道 CAS 组态相互作用计算以及对波函数的价键样解释,与具有 Z = F、Cl 和 Br 的配合物进行进一步比较,与之前报道的结果(2020, 142, 8514)存在差异,并证明整个系列配合物的电子结构一致,而不是配体场排列的性质发生变化,Z = F。