Self-propulsion of a droplet induced by combined diffusiophoresis and Marangoni effects

被引:2
|
作者
Wang, Yuhang [1 ]
Zheng, Longtao [1 ]
Li, Gaojin [1 ,2 ]
机构
[1] Shanghai Jiao Tong Univ, Sch Ocean & Civil Engn, Shanghai, Peoples R China
[2] Shanghai Jiao Tong Univ, Sch Ocean & Civil Engn, Shanghai 200240, Peoples R China
基金
上海市自然科学基金;
关键词
active droplet; diffusiophoresis; Marangoni effect; SURFACTANT TRANSFER; MOTION; INSTABILITY;
D O I
10.1002/elps.202400005
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Chemically active droplets display complex self-propulsion behavior in homogeneous surfactant solutions, often influenced by the interplay between diffusiophoresis and Marangoni effects. Previous studies have primarily considered these effects separately or assumed axisymmetric motion. To understand the full hydrodynamics, we investigate the motion of a two-dimensional active droplet under their combined influences using weakly nonlinear analysis and numerical simulations. The impact of two key factors, the Peclet number (Pe$Pe$) and the mobility ratio between diffusiophoretic and Marangoni effects (m$m$), on droplet motion is explored. We establish a phase diagram in the Pe-m$Pe-m$ space, categorizing the boundaries between four types of droplet states: stationary, steady motion, periodic/quasi-periodic motion, and chaotic motion. We find that the mobility ratio does not affect the critical Pe$Pe$ for the onset of self-propulsion, but it significantly influences the stability of high-wavenumber modes as well as the droplet's velocity and trajectory. Scaling analysis reveals that in the high Pe$Pe$ regime, the Marangoni and diffusiophoresis effects lead to distinct velocity scaling laws: U similar to Pe-1/2$U\sim Pe<^>{-1/2}$ and U similar to Pe-1/3$U\sim Pe<^>{-1/3}$, respectively. When these effects are combined, the velocity scaling depends on the sign of the mobility ratio. In cases with a positive mobility ratio, the Marangoni effect dominates the scaling, whereas the negative diffusiophoretic effect leads to an increased thickness of the concentration boundary layer and a flattened scaling of the droplet velocity.
引用
收藏
页码:2154 / 2168
页数:15
相关论文
共 50 条
  • [1] Temperature and Humidity Dependence of Marangoni Convection and Its Effect on the Self-propulsion of an Oil Droplet
    Yamada, Masato
    Shigemune, Hiroki
    Maeda, Shingo
    Sawada, Hideyuki
    CHEMISTRY LETTERS, 2021, 50 (03) : 493 - 496
  • [2] Droplet Self-Propulsion on Superhydrophobic Microtracks
    Stamatopoulos, Christos
    Milionis, Athanasios
    Ackerl, Norbert
    Donati, Matteo
    de la Vallee, Paul Leudet
    von Rohr, Philipp Rudolf
    Poulikakos, Dimos
    ACS NANO, 2020, 14 (10) : 12895 - 12904
  • [3] Self-propulsion droplet induced via periodic explosive boiling
    Cao Chun-Lei
    Xu Jin-Liang
    Ye Wen-Li
    ACTA PHYSICA SINICA, 2021, 70 (24)
  • [4] Self-propulsion of a water droplet in an electric field
    Gunji, M
    Washizu, M
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2005, 38 (14) : 2417 - 2423
  • [5] Droplet Self-Propulsion Based on Heterogeneous Surfaces
    Xue, Luanluan
    Li, Huizeng
    Li, An
    Zhao, Zhipeng
    Song, Yanlin
    PROGRESS IN CHEMISTRY, 2021, 33 (01) : 78 - 86
  • [6] Research on diffusiophoresis of self-propulsion Janus particles based on lattice Boltzmann method
    Zhou Guang-Yu
    Chen Li
    Zhang Hong-Yan
    Cui Hai-Hang
    ACTA PHYSICA SINICA, 2017, 66 (08)
  • [7] Self-propulsion near the onset of Marangoni instability of deformable active droplets
    Morozov, Matvey
    Michelin, Sebastien
    JOURNAL OF FLUID MECHANICS, 2019, 860 : 711 - 738
  • [8] Self-Propulsion Mode Switching of a Briggs-Rauscher Droplet
    Kuze, Masakazu
    Kubodera, Yujin
    Hashishita, Hiromi
    Matsuo, Muneyuki
    Nishimori, Hiraku
    Nakata, Satoshi
    CHEMSYSTEMSCHEM, 2023, 5 (03)
  • [9] Ordering of the Nanoscale Step Morphology As a Mechanism for Droplet Self-Propulsion
    Hilner, Emelie
    Zakharov, Alexei A.
    Schulte, Karina
    Kratzer, Peter
    Andersen, Jesper N.
    Lundgren, Edvin
    Mikkelsen, Anders
    NANO LETTERS, 2009, 9 (07) : 2710 - 2714
  • [10] Self-propulsion of a Quincke droplet under complex wall conditions
    Xie, Zonglu
    Dong, Qingming
    Wang, Zhentao
    Zhao, Xingang
    Hu, Guohua
    PHYSICS OF FLUIDS, 2024, 36 (12)