论文标题
来自反应力场的钻石的水合结构
Hydration structure of diamondoids from reactive force fields
论文作者
论文摘要
钻石是在催化和纳米技术中应用的有希望的材料。由于他们的许多应用都处于水性环境中,因此要了解其功能,必须了解其第一个水合壳中水分子的结构和动力学。在这项研究中,我们开发了用于原子分析的水合钻石模拟分子动力学模拟的改进的反应力场(RAEXFF)参数,以表征其界面水结构。我们通过密度功能理论参数化力场并验证水结构对几何形状优化的结构。我们将结果与钻石周围的水结构进行比较,所有部分电荷设置为零,并在带电的平滑球周围,并在所有情况下都在定性上相似的水结构。但是,水分子的响应对原子分辨的钻石素中的部分电荷最敏感。从原子细节的系统排除中,我们可以得出关于纳米颗粒界面上疏水作用的性质的通用结论,并将其链接到界面水结构。短长度尺度上离散的部分电荷之间的相互作用会影响水合结构,但疏水作用似乎在这些短尺度表面扰动中是稳定的。我们的方法和我们提出的工作流程可转移到其他碳氢化合物和界面系统。
Diamondoids are promising materials for applications in catalysis and nanotechnology. Since many of their applications are in aqueous environments, to understand their function it is essential to know the structure and dynamics of the water molecules in their first hydration shells. In this study, we develop an improved reactive force field (ReaxFF) parameter set for atomistically resolved molecular dynamics simulations of hydrated diamondoids to characterize their interfacial water structure. We parameterize the force field and validate the water structure against geometry-optimized structures from density functional theory. We compare the results to water structures around diamondoids with all partial charges set to zero, and around charged smooth spheres, and find qualitatively similar water structuring in all cases. However, the response of the water molecules is most sensitive to the partial charges in the atomistically resolved diamondoids. From the systematic exclusion of atomistic detail we can draw generic conclusions about the nature of the hydrophobic effect at nanoparticle interfaces and link it to the interfacial water structure. The interactions between discrete partial charges on short length scales affect the hydration structures strongly but the hydrophobic effect seems to be stable against these short scale surface perturbations. Our methods and the workflow we present are transferable to other hydrocarbons and interfacial systems.