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Defect-Density-Controlled Phase-Change Phenomena

delete2023-03-07
delete7
PRE
AI
M
Muhammad Jahidul Hoque
颜
颜笑 (Xiao Yan)
H
Haoyun Qiu
J
Jingcheng Ma
J
Jiaqi Li
X
Xuzhi Du
M
Majid T. Linjawi
N
Nenad Miljkovic *
DOI:10.1021/acsami.2c20938delete
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摘要

摘要

En 中文
Juxtaposing hydrophilicity and hydrophobicity on the same surface, known as hybrid surface engineering, can enhance phase-change heat transfer. However, controlling hydrophilicity on hybrid surfaces in a scalable fashion is a challenge, limiting their application. Here, using widely available metal meshes with variable dimensions and by controlling the patterning pressure, we scalably fabricate hybrid surfaces having spot and gridlike patterns using stamping. Using fog harvesting in a controlled chamber, we show that optimized hybrid surfaces have a similar to 37% higher fog harvesting rate when compared to homogeneous superhydrophobic surfaces. Furthermore, condensation frosting experiments reveal that, on grid-patterned hybrid surfaces, frost propagates at similar to 160% higher velocity and provides similar to 20% less frost coverage when compared to homogeneous superhydrophobic surfaces. During defrost, our hybrid surfaces retain more water when compared to superhydrophobic surfaces due to the presence of hydrophilic patterns and melt water pinning. We adapt our fabrication technique to roll-to-roll patterning, demonstrating wettability contrast on round metallic geometries via atmospheric water vapor condensation. This work provides guidelines for the rapid, substrate-independent, and scalable fabrication of hybrid wettability surfaces for a wide variety of applications.
Keyword:
defects
patterns
mesh
biphilic
hybrid
condensation
fog
frost-defrost
roll-to-roll

期刊

ACS Applied Materials and Interfaces 封面图
ACS Applied Materials and Interfaces
IF:
8.2
论文数:
6.1W
被引数:
38.7W

机构

University of Illinois System 封面图
University of Illinois System
学者数:
6.9W
论文数: 6.2W
被引数: 644
引用论文

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