Self-assembly and complex manipulation of colloidal mesoscopic particles by active thermocapillary stress

被引:17
|
作者
Ghosh, Subhrokoli [1 ]
Biswas, Aritra [1 ]
Roy, Basudev [2 ]
Banerjee, Ayan [1 ]
机构
[1] Indian Inst Sci Educ & Res, Dept Phys Sci, Kolkata 741246, Mohanpur, India
[2] Indian Inst Technol Madras, Dept Phys, Madras 600036, Tamil Nadu, India
关键词
FABRICATION; STOKESLET; MOTION;
D O I
10.1039/c9sm00721k
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
We demonstrate that the active thermocapillary stresses induced by multiple microbubbles offer simple routes to directed self-assembly and complex but controllable micromanipulation of mesoscopic colloidal particles embedded in a liquid. The microbubbles are nucleated on a liquid-glass interface using optical tweezers. The flow around a single bubble causes self-assembly of the particles in rings at the bubble-base, while an asymmetric temperature profile generated across the bubble interface breaks the azimuthal symmetry of the flow, and induces simultaneous accumulation and repulsion of particles at different axial planes with respect to the bubble. The flow due to two adjacent bubbles leads to more diverse effects including the sorting of particles, and to local vorticity that causes radial and axial rotation of the particles -the latter being obtained for the first time using optical tweezers. The sorting is enabled by nucleating the bubbles on spatially discrete temperature profiles, while the vorticity is generated by nucleating them in the presence of a temperature gradient which once again causes a strong symmetry-breaking in the azimuthal flow. The flow profiles obtained in the experiments are explained by analytical solutions or qualitative explanations of the associated thermocapillary problem employing the Stokes and heat equations.
引用
收藏
页码:4703 / 4713
页数:11
相关论文
共 50 条
  • [1] Self-assembly of colloidal particles into complex structures.
    Xia, YN
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2004, 227 : U886 - U887
  • [2] Self-Assembly of Colloidal Particles
    Sharma P.
    Resonance, 2018, 23 (3) : 263 - 275
  • [3] An active approach to colloidal self-assembly
    Mallory, S.A.
    Valeriani, Chantal
    Cacciuto, A.
    arXiv, 2021,
  • [4] An Active Approach to Colloidal Self-Assembly
    Mallory, Stewart A.
    Valeriani, Chantal
    Cacciuto, Angelo
    ANNUAL REVIEW OF PHYSICAL CHEMISTRY, VOL 69, 2018, 69 : 59 - 79
  • [5] Patchy colloidal particles for programmed self-assembly
    Duguet, Etienne
    Hubert, Celine
    Chomette, Cyril
    Perro, Adeline
    Ravaine, Serge
    COMPTES RENDUS CHIMIE, 2016, 19 (1-2) : 173 - 182
  • [6] Self-assembly of latex particles for colloidal crystals
    Zhirong Lia
    Particuology, 2011, 9 (06) : 559 - 565
  • [7] Self-assembly scenarios of patchy colloidal particles
    Doppelbauer, Guenther
    Noya, Eva G.
    Bianchi, Emanuela
    Kahl, Gerhard
    SOFT MATTER, 2012, 8 (30) : 7768 - 7772
  • [8] Self-assembly of latex particles for colloidal crystals
    Li, Zhirong
    Wang, Jingxia
    Song, Yanlin
    PARTICUOLOGY, 2011, 9 (06) : 559 - 565
  • [9] Self-assembly of colloidal particles on different surfaces
    Ulmeanu, M.
    Zamfirescu, M.
    Medianu, R.
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2009, 338 (1-3) : 87 - 92
  • [10] Molecular Mimetic Self-Assembly of Colloidal Particles
    Mao, Zhengwei
    Xu, Haolan
    Wang, Dayang
    ADVANCED FUNCTIONAL MATERIALS, 2010, 20 (07) : 1053 - 1074