Smiechowski Maciej, Krakowiak Joanna, Bruździak Piotr, Stangret Janusz
Department of Physical Chemistry, Chemical Faculty, Gdańsk University of Technology, Narutowicza 11/12, 80-233 Gdańsk, Poland.
Phys Chem Chem Phys. 2017 Mar 29;19(13):9270-9280. doi: 10.1039/c6cp08799j.
Infrared (IR) spectroscopy is a widely used and invaluable tool in the studies of solvation phenomena in electrolyte solutions. Using state-of-the-art chemometric analysis of a spectral series measured in a concentration-dependent manner, the spectrum of the solute-affected solvent can be extracted, providing a detailed view of the structural and energetic states of the solvent molecules influenced by the solute. Concurrently, ab initio molecular dynamics (AIMD) simulations provide the solvation shell picture at an atomistic detail level and allow for a consistent decomposition of the theoretical IR spectrum in terms of distance-dependent contributions of the solvent molecules. Here, we show for the first time how the chemometric techniques designed with the analysis of experimental data in mind can be harnessed to extract corresponding information from the computed IR spectra for mutual benefit, but without any mutual input. The wide applicability of this two-track approach is demonstrated using lithium bromide solvation in γ-butyrolactone (GBL) as a showcase. GBL is a cyclic ester with extensive applications as a solvent in electrochemistry and we are particularly motivated by its usefulness in the rechargeable cell industry which justifies further studies of lithium cation solvation in GBL. The combination of experiment and simulations firmly asserts the strong solvent structuring character of Li and a comparatively weak influence exerted on the solvent by Br.
红外(IR)光谱是研究电解质溶液中溶剂化现象广泛使用且极具价值的工具。通过对以浓度依赖方式测量的一系列光谱进行先进的化学计量分析,可以提取受溶质影响的溶剂的光谱,从而详细了解受溶质影响的溶剂分子的结构和能量状态。同时,从头算分子动力学(AIMD)模拟提供了原子细节水平的溶剂化壳层图像,并允许根据溶剂分子的距离相关贡献对理论红外光谱进行一致的分解。在此,我们首次展示了如何利用为分析实验数据而设计的化学计量技术,从计算得到的红外光谱中提取相应信息以实现互利,且无需任何相互输入。以γ-丁内酯(GBL)中溴化锂的溶剂化为例,证明了这种双轨方法的广泛适用性。GBL是一种环状酯,在电化学中作为溶剂有广泛应用,我们尤其受其在可充电电池行业中的实用性所激励,这使得对GBL中锂阳离子溶剂化的进一步研究具有合理性。实验和模拟的结合有力地证实了Li具有很强的溶剂结构化特性,而Br对溶剂的影响相对较弱。