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单乙醇胺的自聚集和微水合作用机制:远红外对大幅度氢键摆动的识别

Self-aggregation and microhydration mechanisms of monoethanolamine: Far-infrared identification of large-amplitude hydrogen bond libration.

作者信息

Yazdabadi S Hafizi, Mihrin D, Feilberg K L, Larsen R Wugt

机构信息

Department of Chemistry, Technical University of Denmark, Kemitorvet 206, 2800 Kgs. Lyngby, Denmark.

DTU Offshore, Technical University of Denmark, Elektrovej 375, 2800 Kgs. Lyngby, Denmark.

出版信息

J Chem Phys. 2024 Oct 21;161(15). doi: 10.1063/5.0233150.

Abstract

The strong tendency for self-aggregation together with an intriguing mechanism for the microhydration of monoethanolamine (MEA) have been explored by low-temperature far-infrared cluster spectroscopy in doped neon "quantum" matrices at 4 K complemented by high-level quantum chemical modeling. In addition to the assignment of new mid-infrared perturbed intramolecular transitions, a distinct far-infrared transition is unambiguously assigned to the concerted large-amplitude hydrogen bond librational motion of the MEA homodimer. This observation confirms a global "head-to-head" intermolecular potential energy minimum associated with the formation of a compact doubly intermolecular OH⋯N hydrogen-bonded cyclic structure, where both monomeric intramolecular OH⋯N hydrogen bonds are broken upon complexation. By means of relative mixing ratio dependencies, dedicated annealing procedures, and selective complexation between MEA and isotopic H216O and H218O samples, distinct far-infrared transitions associated with large-amplitude intra-molecular hindered OH torsional motion and inter-molecular H2O librational (hindered c-type overall rotational) motion of the MEA monohydrate are furthermore assigned unambiguously for the first time. These spectroscopic observations reveal an intriguing metastable conformation, where H2O acts as a OH⋯O hydrogen bond donor to the hydroxy group instead of the amino group of MEA upon microhydration in the cryogenic neon environment, where the microhydration strengthens the intramolecular OH⋯N hydrogen bond of MEA due to hydrogen bond cooperativity.

摘要

在4K的掺杂氖“量子”基质中,通过低温远红外团簇光谱并辅以高水平量子化学建模,研究了单乙醇胺(MEA)的强烈自聚集倾向及其有趣的微水合作用机制。除了对新的中红外受扰分子内跃迁进行归属外,还明确地将一个独特的远红外跃迁归属为MEA同二聚体的协同大振幅氢键摆动运动。这一观察结果证实了与形成紧密的双分子间OH⋯N氢键环状结构相关的全局“头对头”分子间势能最小值,其中两个单体分子内的OH⋯N氢键在络合时均被破坏。通过相对混合比依赖性、专门的退火程序以及MEA与同位素H₂¹⁶O和H₂¹⁸O样品之间的选择性络合,首次明确地归属了与MEA一水合物的大振幅分子内受阻OH扭转运动和分子间H₂O摆动(受阻c型整体旋转)运动相关的独特远红外跃迁。这些光谱观察结果揭示了一种有趣的亚稳构象,在低温氖环境中微水合时,H₂O作为OH⋯O氢键供体与MEA的羟基而非氨基形成氢键,微水合由于氢键协同作用增强了MEA的分子内OH⋯N氢键。

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