Maurya Manish, Metya Atanu K, Singh Jayant K, Saito Shinji
Department of Theoretical and Computational Molecular Science, Institute for Molecular Science, Myodaiji, Okazaki, Aichi 444-8585, Japan.
Department of Chemical and Biochemical Engineering, Indian Institute of Technology Patna, Bihar 801106, India.
J Chem Phys. 2021 Apr 28;154(16):164704. doi: 10.1063/5.0046817.
The structure and dynamics of water droplets on a bilayer graphene surface are investigated using molecular dynamics simulations. The effects of solid/water and air/water interfaces on the local structure of water droplets are analyzed in terms of the hydrogen bond distribution and tetrahedral order parameter. It is found that the local structure in the core region of a water droplet is similar to that in liquid water. On the other hand, the local structure of water molecules at the solid/water and air/water interfaces, referred to as the interface and surface regions, respectively, consists mainly of three-coordinated molecules that are greatly distorted from a tetrahedral structure. This study reveals that the dynamics in different regions of the water droplets affects the intermolecular vibrational density of states: It is found that in the surface and interface regions, the intensity of vibrational density of states at ∼50 cm is enhanced, whereas those at ∼200 and ∼500 cm are weakened and redshifted. These changes are attributed to the increase in the number of molecules having fewer hydrogen bonds in the interface and surface regions. Both single-molecule and collective orientation relaxations are also examined. Single-molecule orientation relaxation is found to be marginally slower than that in liquid water. On the other hand, the collective orientation relaxation of water droplets is found to be significantly faster than that of liquid water because of the destructive correlation of dipole moments in the droplets. The negative correlation between distinct dipole moments also yields a blueshifted libration peak in the absorption spectrum. It is also found that the water-graphene interaction affects the structure and dynamics of the water droplets, such as the local water structure, collective orientation relaxation, and the correlation between dipole moments. This study reveals that the water/solid and water/air interfaces strongly affect the structure and intermolecular dynamics of water droplets and suggests that the intermolecular dynamics, such as energy relaxation dynamics, in other systems with interfaces are different from those in liquid water.
利用分子动力学模拟研究了双层石墨烯表面水滴的结构和动力学。从氢键分布和四面体序参量的角度分析了固/水和气/水界面对水滴局部结构的影响。研究发现,水滴核心区域的局部结构与液态水相似。另一方面,固/水和气/水界面处水分子的局部结构,分别称为界面区域和表面区域,主要由从四面体结构严重扭曲的三配位分子组成。这项研究表明,水滴不同区域的动力学影响分子间振动态密度:研究发现,在表面和界面区域,约50 cm处的振动态密度强度增强,而约200 cm和约500 cm处的振动态密度强度减弱并发生红移。这些变化归因于界面和表面区域中氢键较少的分子数量增加。还研究了单分子和集体取向弛豫。发现单分子取向弛豫比液态水中的略慢。另一方面,由于水滴中偶极矩的破坏性相关性,发现水滴的集体取向弛豫比液态水的明显更快。不同偶极矩之间的负相关性还在吸收光谱中产生蓝移的摆动峰。还发现水-石墨烯相互作用影响水滴的结构和动力学,如局部水结构、集体取向弛豫以及偶极矩之间的相关性。这项研究表明,水/固和气/水界面强烈影响水滴的结构和分子间动力学,并表明在其他具有界面的系统中,分子间动力学,如能量弛豫动力学,与液态水中的不同。