Key Laboratory of Comprehensive and Highly Efficient Utilization of Salt Lake Resources, Qinghai Institute of Salt Lakes, Chinese Academy of Sciences, Xining, Qinghai 810008, China; Qinghai Provincial Key Laboratory of Resources and Chemistry of Salt Lakes, Xining, Qinghai 810008, China.
Key Laboratory of Comprehensive and Highly Efficient Utilization of Salt Lake Resources, Qinghai Institute of Salt Lakes, Chinese Academy of Sciences, Xining, Qinghai 810008, China; Qinghai Provincial Key Laboratory of Resources and Chemistry of Salt Lakes, Xining, Qinghai 810008, China.
Spectrochim Acta A Mol Biomol Spectrosc. 2022 Feb 15;267(Pt 2):120543. doi: 10.1016/j.saa.2021.120543. Epub 2021 Oct 29.
The micro-structure of hydration shell of solute in water is significant for understanding the properties of aqueous solutions. Raman spectroscopy has been employed for studying the hydration shell structure of the solute for decades, however, Raman imaging data is still seriously overlapped, making it challenging to obtain information on the spectrum of hydrated water molecules. In this paper, Raman spectroscopy was employed to study the O-H vibration peaks of LiCl aqueous solution and LiCl-MgCl-HO mixed aqueous solution. The changes of stretching vibration peak of 2800 ∼ 3800 cmO-H and hydrogen bond network structure in aqueous solution were analyzed at room temperature and ion association. With the increase of magnesium salt ratio, the damage of solute to the bulk water gradually decreases in the mixed solution, which indicated that LiCl has a more significant influence on the bulk water molecules. It is mainly due to the intense hydration of Li, which can not only affect the water molecules in the first hydration shell but also affect the water molecules in the second hydration shell. The number of water molecules in the first hydration shell were obtained by extracting the spectra of different solute first hydration shells from the solution spectra. Those spectra of the hydration shell were employed to study the micro-structures of the first hydration shells of anions, and the aggregation behavior of ions in the the mixed solution.
水合壳中溶质的微观结构对于理解水溶液的性质非常重要。几十年来,拉曼光谱已被用于研究溶质的水合壳结构,但拉曼成像数据仍然严重重叠,使得获取水合水分子光谱的信息变得具有挑战性。本文采用拉曼光谱研究了 LiCl 水溶液和 LiCl-MgCl-HO 混合水溶液的 O-H 振动峰。分析了室温下和离子缔合时 2800~3800cmO-H 的伸缩振动峰和水溶液中氢键网络结构的变化。随着镁盐比例的增加,混合溶液中溶质对主体水的破坏逐渐减小,这表明 LiCl 对主体水分子的影响更大。这主要是由于 Li 的强烈水合作用,不仅可以影响第一水合壳中的水分子,还可以影响第二水合壳中的水分子。从溶液光谱中提取不同溶质第一水合壳的光谱,得到第一水合壳中水分子的数量。这些水合壳的光谱被用于研究阴离子第一水合壳的微观结构以及混合溶液中离子的聚集行为。