A molecular dynamics study of the motion of a nanodroplet of pure liquid on a wetting gradient

被引:37
|
作者
Halverson, Jonathan D. [1 ]
Maldarelli, Charles [1 ,2 ]
Couzis, Alexander [1 ]
Koplik, Joel [2 ,3 ]
机构
[1] CUNY City Coll, Dept Chem Engn, New York, NY 10031 USA
[2] CUNY City Coll, Benjamin Levich Inst Physicochem Hydrodynam, New York, NY 10031 USA
[3] CUNY City Coll, Dept Phys, New York, NY 10031 USA
来源
JOURNAL OF CHEMICAL PHYSICS | 2008年 / 129卷 / 16期
基金
美国国家科学基金会;
关键词
D O I
10.1063/1.2996503
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The dynamic behavior of a nanodroplet of a pure liquid on a wetting gradient was studied using molecular dynamics simulation. The spontaneous motion of the droplet is induced by a force imbalance at the contact line. We considered a Lennard-Jones system as well as water on a self-assembled monolayer (SAM). The motion of the droplet for the Lennard-Jones case was found to be steady with a simple power law describing its center-of-mass position with time. The behavior of the water droplet was found to depend on the uniformity of the wetting gradient, which was composed of methyl- and hydroxyl-terminated alkanethiol chains on Au(111). When the gradient was nonuniform the droplet was found to become pinned at an intermediate position. However, a uniform gradient with the same overall strength was found to drive a droplet consisting of 2000 water molecules a distance of 25 nm or nearly ten times its initial base radius in tens of nanoseconds. A similar result was obtained for a droplet that was twice as large. Despite the many differences between the Lennard-Jones and water-SAM systems, the two show a similar overall behavior for the motion. Fair agreement was seen between the simulation results for the water droplet speed and the theoretical predictions. When the driving force was corrected for contact angle hysteresis, the agreement was seen to improve. (C) 2008 American Institute of Physics. [DOI: 10.1063/1.2996503]
引用
收藏
页数:12
相关论文
共 50 条
  • [41] Dynamics of a spreading nanodroplet: A molecular dynamic simulation
    Yaneva, J
    Milchev, A
    Binder, K
    MACROMOLECULAR THEORY AND SIMULATIONS, 2003, 12 (08) : 573 - 581
  • [42] Molecular dynamics study of nanodroplet impact on superhydrophobic surfaces with varying inclination angles
    Liao, Mingjun
    Ren, Xinquan
    Wang, Baihan
    Hong, Wenpeng
    Xie, Fangfang
    PHYSICS OF FLUIDS, 2024, 36 (12)
  • [43] Continuum and molecular-dynamics simulation of nanodroplet collisions
    Bardia, Raunak
    Liang, Zhi
    Keblinski, Pawel
    Trujillo, Mario F.
    PHYSICAL REVIEW E, 2016, 93 (05):
  • [44] Evaluation of Wetting Behaviors of Liquid Sodium on Transition Metals: An Experimental and Molecular Dynamics Simulation Study
    Liang, Na
    Fu, Xiaogang
    Zhang, Jinquan
    Ruan, Zhangshun
    Qin, Bo
    Ma, Tengfei
    Long, Bin
    MATERIALS, 2024, 17 (03)
  • [45] Molecular dynamics study of sessile ionic nanodroplet under external electric field
    Chatterjee, Shilpi
    Hens, Abhiram
    Ghanta, Kartik Chandra
    Biswas, Gautam
    CHEMICAL ENGINEERING SCIENCE, 2021, 229
  • [46] Molecular dynamics study of sessile ionic nanodroplet under external electric field
    Chatterjee, Shilpi
    Hens, Abhiram
    Ghanta, Kartik Chandra
    Biswas, Gautam
    Chemical Engineering Science, 2022, 229
  • [47] Dealloying of liquid CuAu nanoclusters during rotary motion: A molecular dynamics study
    Neubauer, H.
    Mayr, S.G.
    Journal of Applied Physics, 2007, 101 (04):
  • [48] Dealloying of liquid CuAu nanoclusters during rotary motion: A molecular dynamics study
    Neubauer, H.
    Mayr, S. G.
    JOURNAL OF APPLIED PHYSICS, 2007, 101 (04)
  • [49] Molecular dynamics simulation of a Gold nanodroplet in contact with graphene
    Davoodi, Jamal
    Safaralizade, Mitra
    Yarifard, Mohsen
    MATERIALS LETTERS, 2016, 178 : 205 - 207
  • [50] Wetting Characteristics of Alkanes Droplets: a Molecular Dynamics Study
    Cai, Weihua
    He, Ziyu
    Wang, Jiaxin
    Gao, Lei
    Li, Qian
    Wang, Yue
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2022, 43 (05): : 1375 - 1384