Impact Propagation and Absorption Mechanisms in Two Dimensional Colloidal Monolayers

ORAL

Abstract

We report experimental and numerical studies on the propagation and absorption of localized mechanical pulses in two dimensional colloidal monolayers. The colloidal monolayers consist of hexagonal-packed and disordered arrays of SiO2 microspheres (radius R = 3.69 um) immersed in solvent with different viscosities. We triggered the localized mechanical pulses by creating an isotropic pressure wave from pulsed laser ablation (532nm, 4ns) of a single gold-coated SiO2 Janus microsphere and monitored the impact propagation at single particle level using a microscope system equipped with a high speed camera (300kHz frame rate). We modeled the dynamics of the systems considering hydrodynamic interactions, particle elasticity, and intermolecular forces and showed a good agreement with experimental observations. We will discuss the dependence of laser power, solvent viscosities, and spatial arrangement on the stress propagation.

Presenters

  • Jinwoong Cha

    • ETH Zurich

Authors

  • Jinwoong Cha

    • ETH Zurich
  • Ivo Buttinoni

    • University of Oxford
  • Wei-Hsun Lin

    • Clarity Movement Co.
  • Stéphane Job

    • Institut Supérieur de Mécanique de Paris
  • Chiara Daraio

    • Caltech
    • California Institute of Technology
    • Mechanical and Civil Engineering, California Institute of Technology
    • Division of Engineering and Applied Science, California Institute of Technology
  • Lucio Isa

    • ETH Zurich