| Literature DB >> 31231945 |
Jing Li1, Xiaofeng Zhou2, Yujie Zhang3, Chonglei Hao1, Fuwang Zhao4, Minfei Li1, Hui Tang4, Wenjing Ye3, Zuankai Wang1,5.
Abstract
The self-transportation of mobile Leidenfrost droplets with well-defined direction and velocity on millimetric ratchets is one of the most representative and spectacular phenomena in droplet dynamics. Despite extensive progress in the ability to control the spatiotemporal propagation of droplets, it remains elusive how the individual ratchet units, as well as the interactions within their arrays, are translated into the collective droplet dynamics. Here, simple planar ratchets characterized by uniform height normal to the surface are designed. It is revealed that on planar ratchets, the transport dynamics of Leidenfrost droplets is dependent not only on individual units, but also on the elegant coordination within their arrays dictated by their topography. The design of planar ratchets enriches the fundamental understanding of how the surface topography is translated into dynamic and collective droplet transport behaviors, and also imparts higher applicability in microelectromechanical system based fluidic devices.Keywords: Leidenfrost droplets; collective coordination; fluidic devices; individual effect; rectification
Year: 2019 PMID: 31231945 DOI: 10.1002/smll.201901751
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281