Bai Yimin, He Jiman, Gao Yuting, Zhang Miaomiao, Zhou Dexia, Tang Yun, Liu Jing, Bian Hongtao, Fang Yu
Key Laboratory of Applied Surface and Colloid Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an 710119, China.
J Phys Chem B. 2024 Mar 14;128(10):2447-2456. doi: 10.1021/acs.jpcb.3c07850. Epub 2024 Feb 28.
Formamide (FA) exhibits complete miscibility with water, offering a simplified model for exploring the solvation dynamics of peptide linkages in biophysical processes. Its liquid state demonstrates a three-dimensional hydrogen bonding network akin to water, reflecting solvent-like behavior. Analyzing the microscopic structure and dynamics of FA-water mixtures is expected to provide crucial insights into hydrogen bonding dynamics─a key aspect of various biophysical phenomena. This study is focused on the dynamics of FA-water mixtures using linear and femtosecond infrared spectroscopies. By using the intrinsic OD stretch and extrinsic probe SCN, the local vibrational behaviors across various FA-water compositions were systematically investigated. The vibrational relaxation of OD stretch revealed a negligible impact of FA addition on the vibrational lifetime of water molecules, underscoring the mixture's water-like behavior. However, the reorientational dynamics of OD stretch slowed with increasing FA mole fraction (), plateauing beyond > 0.5. This suggests a correlation between OD's reorientational time and the strength of the hydrogen bond network, likely tied to the solution's changing dielectric constant. Conversely, the vibrational relaxation dynamics of SCN was strongly correlated with , highlighting a competition between water and FA molecules in solvating SCN. Moreover, a linear relationship between rising viscosity and the prolonged correlation time of SCN's slow dynamics indicates that the solution's macroscopic viscosity is dictated by the extended structures formed between FA and water molecules. The relation between the reorientation dynamics of the SCN and the macroscopic viscosity in aqueous FA-water mixture solutions was analyzed by using the Stokes-Einstein-Debye equations. The direct viscosity-diffusion coupling is observed, which can be attributed to the homogeneous dynamics feature in FA-water mixture solutions. The inclusion of these intrinsic and extrinsic probes not only enhances the comprehensiveness of our analysis but also provides valuable insights into various aspects of the dynamics within the FA-water system. This investigation sheds light on the fundamental dynamics of FA-water mixtures, emphasizing their molecular-level homogeneity in this binary mixture solution.
甲酰胺(FA)与水完全互溶,为探索生物物理过程中肽键的溶剂化动力学提供了一个简化模型。其液态表现出类似于水的三维氢键网络,反映出类似溶剂的行为。分析FA-水混合物的微观结构和动力学有望为氢键动力学提供关键见解,而氢键动力学是各种生物物理现象的一个关键方面。本研究利用线性和飞秒红外光谱研究FA-水混合物的动力学。通过使用固有的OD伸缩振动和外在探针SCN,系统地研究了不同FA-水组成下的局部振动行为。OD伸缩振动的振动弛豫表明,添加FA对水分子的振动寿命影响可忽略不计,突出了混合物类似水的行为。然而,OD伸缩振动的重取向动力学随着FA摩尔分数()的增加而减慢,在>0.5时趋于平稳。这表明OD的重取向时间与氢键网络强度之间存在相关性,可能与溶液介电常数的变化有关。相反,SCN的振动弛豫动力学与密切相关,突出了水和FA分子在溶剂化SCN方面的竞争。此外,粘度上升与SCN慢动力学的相关时间延长之间的线性关系表明,溶液的宏观粘度由FA和水分子之间形成的扩展结构决定。利用斯托克斯-爱因斯坦-德拜方程分析了FA-水混合溶液中SCN的重取向动力学与宏观粘度之间的关系。观察到直接的粘度-扩散耦合,这可归因于FA-水混合溶液中的均匀动力学特征。包含这些内在和外在探针不仅增强了我们分析的全面性,还为FA-水系统内动力学的各个方面提供了有价值的见解。这项研究揭示了FA-水混合物的基本动力学,强调了它们在这种二元混合溶液中的分子水平均匀性。