Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, California 92093, USA.
J Chem Phys. 2019 Jan 21;150(3):034701. doi: 10.1063/1.5072754.
We investigate the structure of water at the interface of three long-chain alcohol monolayers differing in alkyl chain length through molecular dynamics simulations combined with modeling of vibrational sum-frequency generation (vSFG) spectra. The effects of alkyl chain parity on interfacial water are examined through extensive analysis of structural properties, hydrogen bonding motifs, and spectral features. Besides providing molecular-level insights into the structure of interfacial water, this study also demonstrates that, by enabling comparisons with experimental vSFG spectra, computational spectroscopy may be used to test and validate force fields commonly used in biomolecular simulations. The results presented here may serve as benchmarks for further investigations to characterize ice nucleation induced by alcohol monolayers.
我们通过分子动力学模拟结合振动和频发生(vSFG)光谱建模,研究了三种长链醇单层界面上水的结构,这三种单层的烷基链长度不同。通过对结构性质、氢键模式和光谱特征的广泛分析,考察了烷基链奇偶性对界面水的影响。本研究不仅提供了界面水结构的分子水平见解,还表明通过与实验 vSFG 光谱进行比较,计算光谱可用于测试和验证常用于生物分子模拟的力场。本文的结果可以作为进一步研究的基准,以表征醇单层诱导的冰核形成。