Preparation of Fluoroalkyl End-Capped Oligomer/Cyclodextrin Polymer Composites: Development of Fluorinated Composite Material Having a Higher Adsorption Ability toward Organic Molecules — Oak Academic Publishing
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Preparation of Fluoroalkyl End-Capped Oligomer/Cyclodextrin Polymer Composites: Development of Fluorinated Composite Material Having a Higher Adsorption Ability toward Organic Molecules
Kankyo Kogaku, Hirosaki, Japan
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Department of Frontier Materials Chemistry, Graduate School of Science and Technology, Hirosaki University, Hirosaki, Japan
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Department of Frontier Materials Chemistry, Graduate School of Science and Technology, Hirosaki University, Hirosaki, Japan
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Department of Frontier Materials Chemistry, Graduate School of Science and Technology, Hirosaki University, Hirosaki, Japan
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Department of Frontier Materials Chemistry, Graduate School of Science and Technology, Hirosaki University, Hirosaki, Japan
1 Kankyo Kogaku, Hirosaki, Japan
2 Department of Frontier Materials Chemistry, Graduate School of Science and Technology, Hirosaki University, Hirosaki, Japan
3 Department of Frontier Materials Chemistry, Graduate School of Science and Technology, Hirosaki University, Hirosaki, Japan
4 Department of Frontier Materials Chemistry, Graduate School of Science and Technology, Hirosaki University, Hirosaki, Japan
5 Department of Frontier Materials Chemistry, Graduate School of Science and Technology, Hirosaki University, Hirosaki, Japan
Fluoroalkyl end-capped vinyltrimethoxysilane oligomer [R F - (CH 2 CHSi(OMe) 3 ) n - R F ; R F = CF(CF 3 )OCF 7 , n = 2, 3; R F - (VM) n - R F ] was applied to the preparation of fluoroalkyl end-capped vinyltrimethoxysilane oligomer/ α - , β - , γ - cyclodextrin polymers ( α - , β - , γ - CDPs) composites [R F - (VM-SiO 2 ) n - R F / α - , β - , γ - CDPs] by the sol-gel reaction of the corresponding oligomer in the presence of the α - , β - , γ - CDPs under alkaline conditions. The R F - (VM - SiO 2 ) n - R F / α - , β - , γ - CDPs composites thus obtained were found to give a good dispersibility toward the traditional organic media except for water, and were applied to the surface modification of glass to provide a sueperoleophilic/superhydrophobic characteristic on the modified surface, although the corresponding R F - (VM - SiO 2 ) n - R F nanocomposites can give a usual oleophobic/superhydrophobic property on the surface. These composites powders were also found to be applicable to the packing material for the column chromatography to separate the mixture of oil/water and the water in oil (W/O) emulsions. More interestingly, these composite powders were found to have a higher adsorption ability toward not only low-molecular weight aromatic compounds such as bisphenol A and bisphenol AF but also volatile organic compounds, compared to that of the pristine α - , β - , γ - CDPs.
KeywordsFluorinated Oligomeric CompositeCyclodextrin PolymerSurface ModificationSuperoleophilicSuperhydrophobic PropertySeparation of Oil and WaterOrganic MoleculeVOCAdsorption Ability
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