Lin Qunchao, Deng Lei, Dong Ge, Tang Xianqiong, Li Wei, Long Zhengwu, Xu Fu
College of Civil Engineering, Xiangtan University, Xiangtan 411105, China.
College of Aerospace Science and Technology, National University of Defense Technology, Changsha 410073, China.
Materials (Basel). 2022 Dec 8;15(24):8771. doi: 10.3390/ma15248771.
Understanding the noncovalent (weak) interactions between asphaltene molecules is crucial to further comprehending the viscosity and aggregation behavior of asphaltenes. In the past, intermolecular interactions were characterized indirectly by calculating the radial distribution function and the numerical distribution of distances/angles between atoms, which are far less intuitive than the average reduced density gradient (aRDG) method. This study selected three representative asphaltene molecules (AsphalteneO, AsphalteneT, and AsphalteneY) to investigate the relationship between viscosity and weak intermolecular interactions. Firstly, a non-equilibrium molecular dynamics (NEMD) simulation was employed to calculate the shear viscosities of these molecules and analyze their aggregation behaviors. In addition, the types of weak intermolecular interactions of asphaltene were visualized by the aRDG method. Finally, the stability of the weak intermolecular interactions was analyzed by the thermal fluctuation index (TFI). The results indicate that AsphalteneY has the highest viscosity. The aggregation behavior of AsphalteneO is mainly face-face stacking, while AsphalteneT and AsphalteneY associate mainly via offset stacking and T-shaped stacking. According to the aRDG analysis, the weak interactions between AshalteneT molecules are similar to those between AshalteneO molecules, mainly due to van der Waals interactions and steric hindrance effects. At the same time, there is a strong attraction between AsphalteneY molecules. Additionally, the results of the TFI analysis show that the weak intermolecular interactions of the three types of asphaltene molecules are relatively stable and not significantly affected by thermal motion. Our results provide a new method for better understanding asphaltene molecules' viscosity and aggregation behavior.
了解沥青质分子之间的非共价(弱)相互作用对于进一步理解沥青质的粘度和聚集行为至关重要。过去,分子间相互作用是通过计算径向分布函数以及原子间距离/角度的数值分布来间接表征的,这远不如平均约化密度梯度(aRDG)方法直观。本研究选取了三种具有代表性的沥青质分子(沥青质O、沥青质T和沥青质Y)来研究粘度与分子间弱相互作用之间的关系。首先,采用非平衡分子动力学(NEMD)模拟来计算这些分子的剪切粘度并分析它们的聚集行为。此外,通过aRDG方法可视化沥青质分子间弱相互作用的类型。最后,通过热涨落指数(TFI)分析分子间弱相互作用的稳定性。结果表明,沥青质Y的粘度最高。沥青质O的聚集行为主要是面对面堆积,而沥青质T和沥青质Y主要通过错位堆积和T形堆积缔合。根据aRDG分析,沥青质T分子间的弱相互作用与沥青质O分子间的相似,主要是由于范德华相互作用和空间位阻效应。同时,沥青质Y分子间存在强烈的吸引力。此外,TFI分析结果表明,这三种类型沥青质分子的分子间弱相互作用相对稳定,受热运动影响不显著。我们的结果为更好地理解沥青质分子的粘度和聚集行为提供了一种新方法。