TY - JOUR
T1 - Robust Organic-Inorganic Composite Films with Multifunctional Properties of Superhydrophobicity, Self-Healing, and Drag Reduction
AU - Liu, Yibin
AU - Liu, Jin
AU - Tian, Yi
AU - Zhang, Hao
AU - Wang, Rumin
AU - Zhang, Baoliang
AU - Zhang, Hepeng
AU - Zhang, Qiuyu
N1 - Publisher Copyright:
Copyright © 2019 American Chemical Society.
PY - 2019/3/20
Y1 - 2019/3/20
N2 - Multifunctional films have attracted wide attention in scientific research and engineering applications. Based on thermodynamically driven metathesis reactions of disulfide bonds, a self-healing film with disulfide bonds was designed and prepared, which was hot-pressed by fluorinated silica particles (F-SiO2) to prepare an organic-inorganic composite film with superhydrophobicity and self-healing properties of 70.29% self-healing efficiency, measured by tensile experiments. The increasing amount of F-SiO2 showed various hierarchical structures on the composite films, resulting in elevated contact angles with the maximum up to 168° at an F-SiO2 surface density of 2.0 mg/cm2. Having been hot-pressed into four layers of F-SiO2, the composite films had excellent wear resistance while maintaining superhydrophobicity after 10 m sandpaper abrasion scan. When subjected to acidic solution, bend, finger-wiping, and knife-scratch damage, the composite films still had excellent superhydrophobicity. In addition, the organic-inorganic composite films exhibited excellent drag reduction property, with drag reduction rates up to 27.7%.
AB - Multifunctional films have attracted wide attention in scientific research and engineering applications. Based on thermodynamically driven metathesis reactions of disulfide bonds, a self-healing film with disulfide bonds was designed and prepared, which was hot-pressed by fluorinated silica particles (F-SiO2) to prepare an organic-inorganic composite film with superhydrophobicity and self-healing properties of 70.29% self-healing efficiency, measured by tensile experiments. The increasing amount of F-SiO2 showed various hierarchical structures on the composite films, resulting in elevated contact angles with the maximum up to 168° at an F-SiO2 surface density of 2.0 mg/cm2. Having been hot-pressed into four layers of F-SiO2, the composite films had excellent wear resistance while maintaining superhydrophobicity after 10 m sandpaper abrasion scan. When subjected to acidic solution, bend, finger-wiping, and knife-scratch damage, the composite films still had excellent superhydrophobicity. In addition, the organic-inorganic composite films exhibited excellent drag reduction property, with drag reduction rates up to 27.7%.
UR - http://www.scopus.com/inward/record.url?scp=85063223582&partnerID=8YFLogxK
U2 - 10.1021/acs.iecr.8b06302
DO - 10.1021/acs.iecr.8b06302
M3 - 文章
AN - SCOPUS:85063223582
SN - 0888-5885
VL - 58
SP - 4468
EP - 4478
JO - Industrial and Engineering Chemistry Research
JF - Industrial and Engineering Chemistry Research
IS - 11
ER -