刘新

个人信息Personal Information

教授

博士生导师

硕士生导师

主要任职:创新创业学院院长

性别:男

出生日期:1981-12-01

毕业院校:大连理工大学

学位:博士

所在单位:创新创业学院

学科:机械制造及其自动化. 材料表面工程. 等离子体物理. 生物医学工程

办公地点:机械新大楼

联系方式:0411-84706959

电子邮箱:xinliu@dlut.edu.cn

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A Twice ElectrochemicalEtching Method to Fabricate Superhydrophobic-Superhydrophilic Patterns for Biomimetic Fog Harvest

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论文类型:期刊论文

发表时间:2017-08-18

发表刊物:SCIENTIFIC REPORTS

收录刊物:SCIE、PubMed、Scopus

卷号:7

期号:1

页面范围:8816

ISSN号:2045-2322

摘要:Superhydrophobic-superhydrophilic patterned surfaces have attracted more and more attention due to their great potential applications in the fog harvest process. In this work, we developed a simple and universal electrochemical-etching method to fabricate the superhydrophobic-superhydrophilic patterned surface on metal superhydrophobic substrates. The anti-electrochemical corrosion property of superhydrophobic substrates and the dependence of electrochemical etching potential on the wettability of the fabricated dimples were investigated on Al samples. Results showed that high etching potential was beneficial for efficiently producing a uniform superhydrophilic dimple. Fabrication of long-term superhydrophilic dimples on the Al superhydrophobic substrate was achieved by combining the masked electrochemical etching and boiling-water immersion methods. A long-term wedgeshaped superhydrophilic dimple array was fabricated on a superhydrophobic surface. The fog harvest test showed that the surface with a wedge-shaped pattern array had high water collection efficiency. Condensing water on the pattern was easy to converge and depart due to the internal Laplace pressure gradient of the liquid and the contact angle hysteresis contrast on the surface. The Furmidge equation was applied to explain the droplet departing mechanism and to control the departing volume. The fabrication technique and research of the fog harvest process may guide the design of new water collection devices.