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Water Harvesting Performance of Modified Nanostructure Aluminum Using Silica Nanoparticles Coating and Laser Processing
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Metadata
Document Title
Water Harvesting Performance of Modified Nanostructure Aluminum Using Silica Nanoparticles Coating and Laser Processing
Author
Lekmuenwai M.
Name from Authors Collection
Scopus Author ID
35189277200
Affiliations
School of Integrated Science and Innovation, Sirindhorn International Institute of Technology, Thammasat University, Pathum Thani, 12120, Thailand; School of Manufacturing Systems and Mechanical Engineering, Sirindhorn International Institute of Technology, Thammasat University, Pathum Thani, 12120, Thailand; National Nanotechnology Center (NANOTEC), National Science and Technology Development Agency (NSTDA), Pathum Thani, 12120, Thailand; Department of Materials Engineering, Faculty of Engineering, Kasetsart University, Bangkok, 10900, Thailand
Type
Article
Source Title
Nanomaterials
ISSN
20794991
Year
2025
Volume
15
Issue
11
Open Access
All Open Access; Gold Open Access; Green Open Access
Publisher
Multidisciplinary Digital Publishing Institute (MDPI)
DOI
10.3390/nano15110828
Abstract
Dew collection is one of the most efficient water harvesting methods. In this work, we experimentally investigated the effects of modified nanostructured surfaces on water harvesting performance. Aluminum surfaces exhibiting hydrophobic, superhydrophobic, hydrophilic, and biphilic properties were utilized in this study. The superhydrophobic surface was fabricated using a fluorinated modified silica nanoparticles coating, while nanolaser processing and the surface abrasion with sandpapers were employed to create two distinct hydrophilic structures. In addition, various biphilic surface patterns, incorporating both superhydrophobic and hydrophilic characteristics, were also fabricated. The nanolaser-treated surface demonstrated the highest water harvesting performance, achieving a water collection of 386.7 mL/m2. This performance represented a 42% increase compared to unpolished sample and a 282% increase relative to the superhydrophobic sample. Furthermore, the results indicated that the optimal biphilic surface pattern occurred at a 1:4 superhydrophobic-to-hydrophilic area ratio. The experimental outcomes were further interpreted through the mechanisms underlying water harvesting. Additionally, the experimental results were explained with the water harvesting mechanism. © 2025 by the authors.
Keyword
aluminum | biphilic | condensation | Hydrophilic | hydrophobic | nanolaser | Silica nanoparticles | Superhydrophobic | water harvesting
License
CC BY
Rights
Authors
Publication Source
Scopus