In-situ growth of silica nanoparticles on cellulose and application of hierarchical structure in biomimetic hydrophobicity

被引:0
作者
Xianqiong Chen
Yuyang Liu
Haifeng Lu
Hengrui Yang
Xiang Zhou
John H. Xin
机构
[1] The Hong Kong Polytechnic University,Institute of Textiles and Clothing
[2] Donghua University,College of Chemistry, Chemical Engineering and Biotechnology
[3] University of Minnesota,Department of Bioproducts and Biosystems Engineering
来源
Cellulose | 2010年 / 17卷
关键词
Silica; Nanopartilces; Cellulose; Hydrophobicity; Roughness;
D O I
暂无
中图分类号
学科分类号
摘要
Monodispersed silica nanoparticles were prepared by a simple two-step method with hydrolysis and condensation. The materials were characterized by dynamic light scattering (DLS), SEM and TEM. Through in-situ growth of silica nanoparticles on cotton fabrics, a dual-scaled surface with nanoscaled roughness of silica and microscaled roughness of cellulose fiber was generated. After the modification of the low surface energy, the wettability of smooth silicon slide, silicon slide with nanoscaled roughness of silica particles, cotton fabric, and cotton fabric with silica particles was evaluated by the tests of the contact angle (CA) and the advancing and receding contact angle (ARCA). The cotton fabric with dual-scaled roughness exhibits a static CA of 149.8° for 4 μL water droplet and a hysteresis contact angle (HCA) of 1.8°. The results of CA and HCA show that microscaled roughness plays a more important role than nanoscaled roughness for the value of CA and HCA. The results in the hydrostatic pressure test and the rain test show the important contribution of nanoscaled roughness for hydrophobicity.
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页码:1103 / 1113
页数:10
相关论文
共 92 条
[1]  
Andresen M(2006)Properties and characterization of hydrophobized microfibrillated cellulose Cellulose 13 665-677
[2]  
Johansson LS(1997)Purity of the sacred lotus, or escape from contamination in biological surfaces Planta 202 1-8
[3]  
Tanem BS(2006)Bouncing or sticky droplets: Impalement transitions on superhydrophobic micropatterned surfaces Europhys Lett 74 299-305
[4]  
Stenius P(1945)The water repellency of fabrics and a new water repellency test J Text Inst 36 67-551
[5]  
Barthlott W(1944)Wettability of porous surfaces Trans Faraday Soc 40 546-123
[6]  
Neinhuis C(2007)A direct route to active silica nanoparticles Nanosci Technol (Pts 1 and 2 121-480
[7]  
Bartolo D(2007)Surface modification of cellulose with plant triglycerides for hydrophobicity Cellulose 14 469-5703
[8]  
Bouamrirene F(2004)Water-repellent legs of water striders Nature 432 7036-4749
[9]  
Verneuil E(2007)Electrospinning: a fascinating method for the preparation of ultrathin fibres Angew Chem Int Ed 46 5670-13163
[10]  
Buguin A(2008)Enhancement of the hydrophobicity of silk fabrics by SF6 plasma Appl Surf Sci 254 4744-1705