Pinning and its role in the control of droplet motion on solid substrates

ORAL

Abstract

Pinning of liquid droplets on solid substrates is ubiquitous and plays an essential role in many applications, especially in various areas such as microfluidics and biology. Although pinning can often reduce the efficiency of various applications, a deeper understanding of this phenomenon can actually offer possibilities for technological exploitation. Here, by means of molecular dynamics simulation, we identify the conditions that lead to droplet pinning or depinning and discuss the effects of key parameters in detail, such as the height of the physical pinning barrier and the wettability of the substrates. Moreover, we describe the mechanism of barrier crossing by the droplet upon depinning, identify the driving force of this process, and, also, elucidate the dynamics of the droplet. Not only does our work provide a detailed description of the pinning and depinning processes but also it explicitly highlights how both processes can be exploited in nanotechnology applications to control the droplet motion. Hence, we anticipate that our study will have significant implications for the nanoscale design of substrates in micro- and nanoscale systems and will assist with assessing pinning effects in various applications.

*This project has received funding from the European Union's Horizon 2020 Research and Innovation programme under the Marie Sklodowska-Curie grant agreement no. 778104. This research was supported in part by PLGrid Infrastructure.

Publication: P. E. Theodorakis, A. Amirfazli, B. Hu, Z. Che, Langmuir 37, 4248-4255 (2021) doi: 10.1021/acs.langmuir.1c00215

Presenters

  • Panagiotis E Theodorakis

    • Institute of Physics Polish Academy of S
    • Institute of Physics, Polish Academy of Sciences

Authors

  • Panagiotis E Theodorakis

    • Institute of Physics Polish Academy of S
    • Institute of Physics, Polish Academy of Sciences
  • Alidad Amirfazli

    • York Univ
  • Bin Hu

    • Flow Capture AS
  • Zhizhao Che

    • Tianjin University