详细信息
Fabrication of mechanically durable superhydrophobic wood surfaces using polydimethylsiloxane and silica nanoparticles ( SCI-EXPANDED收录 EI收录) 被引量:114
文献类型:期刊文献
英文题名:Fabrication of mechanically durable superhydrophobic wood surfaces using polydimethylsiloxane and silica nanoparticles
作者:Chang, Huanjun[1] Tu, Kunkun[1] Wang, Xiaoqing[1] Liu, Junliang[1]
第一作者:Chang, Huanjun
通信作者:Wang, XQ[1]
机构:[1]Chinese Acad Forestry, Res Inst Wood Ind, Beijing 100091, Peoples R China
年份:2015
卷号:5
期号:39
起止页码:30647-30653
外文期刊名:RSC ADVANCES
收录:;EI(收录号:20151500740300);Scopus(收录号:2-s2.0-84926671555);WOS:【SCI-EXPANDED(收录号:WOS:000352791300033)】;
基金:The authors acknowledge the financial support from the Grant for National Non-profit Research Institutions of Chinese Academy of Forestry (CAFINT2011C05) and the National Natural Science Foundation of China (31170527).
语种:英文
外文关键词:Coatings - Contact angle - Durability - Fabrication - Microchannels - Microstructure - Nanoparticles - Polydimethylsiloxane - Silica - Silica nanoparticles - SiO2 nanoparticles - Substrates - Superhydrophobicity - Surface treatment - Wetting - Wood
摘要:The excellent properties of wood utilized as an engineering material are detracted by the complex wood-water interactions and the resulting dimensional instability and low durability against biological degradation. Inspired by the lotus effect, mechanically durable superhydrophobic coatings were successfully fabricated on intrinsically heterogeneous wood substrates by simply dip-coating in suspensions of hydrophobic silica (SiO2) nanoparticles dispersed in polydimethylsiloxane (PDMS) solution. Subsequent low-surface-energy treatment with some expensive reagents is not necessary owing to the hydrophobic nature of PDMS and the modified silica particles. The surface microstructure, roughness and wetting behavior of the PDMS-silica hybrid coatings on wood surfaces were investigated in relation to the loadings of the silica particles in the PDMS matrix. When the silica particle loading reached a critical level, desirable hierarchical micro/nanostructures were formed on the wood substrate, allowing for the generation of superhydrophobicity with a contact angle of 152 degrees and a sliding angle of less than 10 degrees. The fabricated PDMS-silica hybrid coating exhibited desirable durability against mechanical abrasion and high-frequency ultrasonic washing in water whilst basically retaining its microstructure and superhydrophobicity. Such mechanically durable superhydrophobic wood surfaces with self-cleaning properties offer an interesting alternative for wood modification, and could improve the performance of wood as an engineering material.
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