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Breaking Droplet Jumping Energy Conversion Limits with Superhydrophobic Microgrooves

  • Qi Peng
  • , Xiao Yan
  • , Jiaqi Li
  • , Longnan Li
  • , Hyeongyun Cha
  • , Yi Ding
  • , Chao Dang
  • , Li Jia
  • , Nenad Miljkovic
  • Beijing Jiaotong University
  • University of Illinois at Urbana-Champaign
  • Kyushu University

Research output: Contribution to journalArticlepeer-review

69 Scopus citations

Abstract

Coalescence-induced droplet jumping has the potential to enhance the performance of a variety of applications including condensation heat transfer, surface self-cleaning, anti-icing, and defrosting to name a few. Here, we study droplet jumping on hierarchical microgrooved and nanostructured smooth superhydrophobic surfaces. We show that the confined microgroove structures play a key role in tailoring droplet coalescence hydrodynamics, which in turn affects the droplet jumping velocity and energy conversion efficiency. We observed self-jumping of individual deformed droplets within microgrooves having maximum surface-To-kinetic energy conversion efficiency of 8%. Furthermore, various coalescence-induced jumping modes were observed on the hierarchical microgrooved superhydrophobic surface. The microgroove structure enabled high droplet jumping velocity (≈0.74U) and energy conversion efficiency (≈46%) by enabling the coalescence of deformed droplets in microgrooves with undeformed droplets on adjacent plateaus. The jumping velocity and energy conversion efficiency enhancements are 1.93× and 6.67× higher than traditional coalescence-induced droplet jumping on smooth superhydrophobic surfaces. This work not only demonstrates high droplet jumping velocity and energy conversion efficiency but also demonstrates the key role played by macroscale structures on coalescence hydrodynamics and elucidates a method to further control droplet jumping physics for a plethora of applications.

Original languageEnglish
Pages (from-to)9510-9522
Number of pages13
JournalLangmuir
Volume36
Issue number32
DOIs
StatePublished - Aug 18 2020

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