European Laboratory for Nonlinear Spectroscopy (LENS), Sesto Fiorentino (Firenze), Italy.
J Phys Chem A. 2012 Mar 8;116(9):2147-53. doi: 10.1021/jp2120115. Epub 2012 Feb 22.
The hydrogen-bond dynamics of lithium nitrate trihydrate has been studied by a combined approach based on ab initio molecular dynamics simulations and wavelet analysis. The simultaneous bifurcated interaction between one hydrogen atom of water molecules and two oxygen atoms of nitrate ions is the pivotal feature of the crystal structure: this bifurcated interaction has deep effects on the O-H stretching region of the vibrational spectrum. The structural, dynamic, spectroscopic, and electronic properties of the bifurcated hydrogen bond have been investigated computationally, elucidating at the molecular level the differences with weak and strong hydrogen bonds present in the crystal. These studies corroborate the very recent IR experiments performed on the lithium nitrate trihydrate crystal, offering new perspectives to interpreting the vibrational spectra. In fact, this approach allows obtaining two-dimensional plots, which summarize the essential features of both the hydrogen-bond network and IR spectra, resulting in a peculiar "signature" of the bifurcated interaction.
通过基于从头算分子动力学模拟和小波分析的联合方法,研究了硝酸锂三水合物的氢键动力学。水分子的一个氢原子和硝酸根离子的两个氧原子之间的同时分叉相互作用是晶体结构的关键特征:这种分叉相互作用对振动光谱的 O-H 伸缩区域有深远的影响。通过计算研究了分叉氢键的结构、动力学、光谱和电子性质,从分子水平阐明了与晶体中存在的弱氢键和强氢键的差异。这些研究证实了最近在硝酸锂三水合物晶体上进行的红外实验,为解释振动光谱提供了新的视角。事实上,这种方法允许获得二维图,总结氢键网络和红外光谱的基本特征,从而形成分叉相互作用的独特“特征”。