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叠氮阴离子与咪唑和1-甲基咪唑在二甲基亚砜中的相互作用

Azide Anion Interactions with Imidazole and 1-Methylimidazole in Dimethyl Sulfoxide.

作者信息

Rana Debkumar, Upterworth Anna Luisa, Winghart Marc-Oliver, Sebastiani Daniel, Nibbering Erik T J

机构信息

Max Born Institut für Nichtlineare Optik und Kurzzeitspektroskopie, 12489 Berlin, Germany.

Institut für Chemie, Martin-Luther-Universität Halle-Wittenberg, 06120 Halle (Saale), Germany.

出版信息

J Phys Chem B. 2025 Aug 14;129(32):8192-8200. doi: 10.1021/acs.jpcb.5c02025. Epub 2025 Aug 4.

Abstract

We chose imidazole (HIm) and 1-methylimidazole (1-MeIm) to probe their interaction with the azide anion. In dimethyl sulfoxide (DMSO), the formation of hydrogen-bonded pairs between the azide ion and HIm is clearly distinguishable from free azide ions in FT-IR spectra, allowing for accurate spectra differentiation. HIm can both donate and accept hydrogen bonds, forming hydrogen-bonded networks, while 1-MeIm can accept only hydrogen bonds, preventing hydrogen-bonded network formation. To differentiate the roles of hydrogen and nonhydrogen bonding interactions with azide at ultrafast time scales, we use femtosecond mid-IR pump-probe spectroscopy. From the time-resolved data analysis, we observe a clear difference in vibrational population relaxation times of the azide anion under the presence of HIm or 1-MeIm. With the addition of HIm, the vibrational population relaxation time of the azide anions decreases by a factor of 1.6 to 1.7, which we attribute to a more efficient energy dissipation pathway provided through the strong hydrogen bonds between the azide anion and HIm. Furthermore, we investigated the influence of alkali and alkaline earth metal counterions on the vibrational relaxation of azide ion pairs and found a dependence on the charge and size of the counterions. An assessment of the molecular distribution function from molecular dynamics simulation supports our results on the interactions between different ion species.

摘要

我们选择咪唑(HIm)和1-甲基咪唑(1-MeIm)来探究它们与叠氮阴离子的相互作用。在二甲基亚砜(DMSO)中,叠氮离子与HIm之间形成的氢键对在傅里叶变换红外光谱(FT-IR)中与游离叠氮离子明显不同,从而实现准确的光谱区分。HIm既能提供氢键也能接受氢键,形成氢键网络,而1-MeIm只能接受氢键,无法形成氢键网络。为了在超快时间尺度上区分与叠氮的氢键和非氢键相互作用的作用,我们使用飞秒中红外泵浦-探测光谱。通过对时间分辨数据分析,我们观察到在HIm或1-MeIm存在下叠氮阴离子的振动布居弛豫时间有明显差异。加入HIm后,叠氮阴离子的振动布居弛豫时间降低了1.6至1.7倍,我们将其归因于叠氮阴离子与HIm之间通过强氢键提供了更有效的能量耗散途径。此外,我们研究了碱金属和碱土金属抗衡离子对叠氮离子对振动弛豫的影响,发现其依赖于抗衡离子的电荷和大小。分子动力学模拟对分子分布函数的评估支持了我们关于不同离子物种间相互作用的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dffc/12359107/fda8b1fb65d7/jp5c02025_0001.jpg

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