• 中文

Shen YizhouProfessor

沈一洲,教授,博士生导师,江苏省某创新平台负责人,国家高层次青年人才,国家首批“博新计划”人才,江苏省“优青”基金获得者,江苏省“青蓝工程”优秀骨干教师,南京航空航天大学“长空学者”,新加坡南洋理工大学博士后,主要从事材料表界面加工与应用研究。主持国家自然科学基金 重点项目/面上项目/青年基金、国家重点研发计划课题、某前沿创新项目/某领域重点基金、国家某重大专项课题、江苏省国际合作创新项目、江苏省...Detials

Rationally Designed Nanostructure Features on Superhydrophobic Surfaces for Enhancing Self-Propelling Dynamics of Condensed Droplets

Release time:2020-03-23  Hits:

  • Affiliation of Author(s):材料科学与技术学院
  • Journal:ACS SUSTAINABLE CHEMISTRY & ENGINEERING
  • Key Words:Superhydrophobic Designed nanostructures Water adhesion force Self-propelling ability
  • Abstract:The self-propelling ability toward achieving more efficient dropwise condensation intensively appeals to researchers due to its academic significance to explain some basic wetting phenomena. Herein we designed and fabricated the two types of microstructure superhydrophobic surfaces, i.e., sealed layered nanoporous structures (SLP-surface) and open nanocone structures (OC-surface). As a consequence, the resultant surfaces exhibit the robust water repellency, and the water droplet nearly suspends on the superhydrophobic surfaces (CA = 158.8 degrees +/- 0.5 degrees, SA = 4 degrees +/- 0.5 degrees for the SLP-surface and CA = 160.2 degrees +/- 0.4 degrees, SA = 1 degrees +/- 0.5 degrees for the OC-surface, respectively). Meanwhile, the impacting droplets can be rapidly rebounded off with a shorter contact time of 11.2 and 10.4 ms (impact velocity V-0 = 1 m/s). The excellent static-dynamic superhydrophobicity is mainly attributed to the air pockets captured by both microscopic rough structures. Regarding the self-propelling ability of condensed droplets, it is found that the droplet microscopic pinning effect of the SLP-surface severely weakens the dynamic self-propelling ability of condensed droplets. The capillary adhesive force induced by the sealed layered nanoporous structures is up to 16.0 mu N. However, the open nanocone structures cause lower water adhesive force (similar to 4.1 mu N) under the action of flowing air pockets, producing a higher dynamic self-propelling ability of condensed droplets. As a consequence, the open nanocone structure superhydrophobic surface displays a huge potential of inhibiting attachment of condensed droplets.
  • ISSN No.:2168-0485
  • Translation or Not:no
  • Co-author:Xie, Yuehan,Jie Tao,Chen, Haifeng,Zhu Chunling,Jin, Mingming,Lu Yang
  • Correspondence Author:沈一洲
  • Date of Publication:2019-01-21