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碳酸铀酰六胺钴体系的研究:理解电荷和氢键对铀酰化合物振动模式改变的影响。

Investigations of the Cobalt Hexamine Uranyl Carbonate System: Understanding the Influence of Charge and Hydrogen Bonding on the Modification of Vibrational Modes in Uranyl Compounds.

作者信息

Pyrch Mikaela Mary F, Bjorklund Jennifer L, Williams James M, Kasperski Maguire, Mason Sara E, Forbes Tori Z

机构信息

Department of Chemistry, University of Iowa, Iowa City, Iowa 52242, United States.

出版信息

Inorg Chem. 2022 Sep 26;61(38):15023-15036. doi: 10.1021/acs.inorgchem.2c01982. Epub 2022 Sep 13.

Abstract

Hydrogen bonding networks within hexavalent uranium materials are complex and may influence the overall physical and chemical properties of the system. This is particularly true if hydrogen bonding takes places between the donor and the oxo group associated with the uranyl cation (UO). In the current study, we evaluate the impact of charge-assisted hydrogen bonding on the vibrational modes of the uranyl cation using uranyl tricarbonate [UO(CO)] interactions with [Co(NH)] as the model system. Herein, we report the synthesis and structural characterization of five novel compounds, [Co(NH)]Cl(CO) (), [Co(NH)]UO(CO) (), [Co(NH)][UO(CO)]Cl (HO) (), [Co(NH)][UO(CO)]Cl (), and [Co(NH)][UO(CO)]CO (), which contain differences in the crystalline packing and extended hydrogen bonding networks. We show that these slight changes in the supramolecular assembly and hydrogen bonding networks result in the modification of modes as observed by infrared and Raman spectroscopy. We use density functional theory calculations to assign the vibrational modes and provide an understanding about how uranyl bond perturbation and changes in hydrogen bonding interactions can impact the resulting spectroscopic signals.

摘要

六价铀材料中的氢键网络很复杂,可能会影响该体系的整体物理和化学性质。如果在供体与与铀酰阳离子(UO)相关的氧代基团之间形成氢键,情况尤其如此。在本研究中,我们以三碳酸铀酰[UO(CO)]与[Co(NH)]的相互作用为模型体系,评估电荷辅助氢键对铀酰阳离子振动模式的影响。在此,我们报告了五种新型化合物的合成与结构表征,即[Co(NH)]Cl(CO)()、[Co(NH)]UO(CO)()、[Co(NH)][UO(CO)]Cl(HO)()、[Co(NH)][UO(CO)]Cl()和[Co(NH)][UO(CO)]CO(),它们在晶体堆积和扩展氢键网络方面存在差异。我们表明,超分子组装和氢键网络中的这些细微变化会导致红外和拉曼光谱观察到的模式发生改变。我们使用密度泛函理论计算来确定振动模式,并对铀酰键扰动和氢键相互作用的变化如何影响所得光谱信号提供理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4703/9516682/8efc31e5f7cd/ic2c01982_0002.jpg

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