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Item Details
Title: POLYMER NANOCOMPOSITES
ADVANCES IN FILLER SURFACE MODIFICATION TECHNIQUES
By: Vikas Mittal (Editor)
Format: Hardback

List price: £115.99
Our price: £98.59
Discount:
15% off
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ISBN 10: 1608761258
ISBN 13: 9781608761258
Availability: Usually dispatched within 1-3 weeks.
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Publisher: NOVA SCIENCE PUBLISHERS INC
Pub. date: 25 March, 2010
Pages: 216
Synopsis: Polymer nanocomposites revolutionised the research in this field owing to the tremendous improvement in the composite properties at very low filler volume fraction. The surface modification of the filler, generally layered silicate montmorillonite clay, is required to compatibilise the organic and inorganic phases. The inorganic clay was modified conventionally with alkyl ammonium ions and the exfoliated nanocomposites with polar polymers could be formed where the clay could be dispersed at nanometer scale. During the initial phase of nanocomposite developments, only ammonium ions of fixed chain length were exchanged on the clay surface. However, this technology suffered when polyolefins and other non-polar polymers were used owing to the difficulties in dispersion of polar clay in the hydrophobic matrices. At best, only partially exfoliated composites could be formed by using these ammonium modified clays. To circumvent these limitations, two possible routes have been followed. By polarising the polymer matrix (e.g. by addition of compatibilisers or surfactants), one can achieve compatibilisation between the organic-inorganic phases.However, this technology leads to deterioration of nanocomposite properties even though better delamination is achieved. On the other hand, one can also focus on the more efficient modification of the filler surface so that the residual polarity after modification of the surface with conventional ammonium ions is also eliminated. A number of new clay surface modification techniques have been developed in the recent years which help in the generation of more exfoliated polymer nanocomposites. These techniques do not rely on the ion exchange of fixed chain length ammonium ions, but lead to generation/exchange of long and polydisperse polymer chains. These techniques include grafting of polymers to the clay surface, grafting of polymers from the clay surface, controlled living polymerisation from the clay surface, in situ generation of polyolefins from the clay surface and clay surface reactions etc. and form very robust technologies for the complete organophilisation of the clay surface.The generation of thick brushes around the clay surface owing to the better surface modification leads to better coverage of the electrostatic forces binding the clay platelets together and also leads to higher basal plane spacing between them. As a result, the modified platelets are more susceptible to exfoliation when compounded with the polymer matrices.
Illustrations: tables & charts
Publication: US
Imprint: Nova Science Publishers Inc
Returns: Non-returnable
Some other items by this author:
ADVANCED MATERIALS (HB)
ADVANCED POLYMER NANOPARTICLES
ADVANCED POLYMER NANOPARTICLES
ADVANCED POLYMER NANOPARTICLES
ADVANCED POLYMER NANOPARTICLES (HB)
ADVANCES IN POLYMER LATEX TECHNOLOGY (HB)
ADVANCES IN POLYMER NANOCOMPOSITE TECHNOLOGY (HB)
ADVANCES IN POLYMER SCIENCE (HB)
ADVANCES IN POLYOLEFIN NANOCOMPOSITES
ADVANCES IN POLYOLEFIN NANOCOMPOSITES (HB)
AGEING AND DEGRADATION OF POLYMER NANOMA (HB)
ANALYTICAL IMAGING TECHNIQUES FOR SOFT MATTER CHARACTERIZATION (HB)
ANALYTICAL IMAGING TECHNIQUES FOR SOFT MATTER CHARACTERIZATION (PB)
BARRIER PROPERTIES OF POLYMER CLAY NANOCOMPOSITES (HB)
CHARACTERIZATION TECHNIQUES FOR POLYMER NANOCOMPOSITES
CHARACTERIZATION TECHNIQUES FOR POLYMER NANOCOMPOSITES
CHARACTERIZATION TECHNIQUES FOR POLYMER NANOCOMPOSITES
CHARACTERIZATION TECHNIQUES FOR POLYMER NANOCOMPOSITES (HB)
CONDUCTING POLYMER COMPOSITES (HB)
ENCAPSULATION NANOTECHNOLOGIES
ENCAPSULATION NANOTECHNOLOGIES
ENCAPSULATION NANOTECHNOLOGIES
ENCAPSULATION NANOTECHNOLOGIES
ENCAPSULATION NANOTECHNOLOGIES (HB)
FOCUS (HB)
FUNCTIONAL NANOMATERIALS AND NANOTECHNOL (PB)
FUNCTIONAL POLYMER BLENDS
FUNCTIONAL POLYMER BLENDS (HB)
FUNCTIONAL POLYMER BLENDS (PB)
GEOPOLYMERS (HB)
HIGH PERFORMANCE POLYMERS AND ENGINEERING PLASTICS
HIGH PERFORMANCE POLYMERS AND ENGINEERING PLASTICS
HIGH PERFORMANCE POLYMERS AND ENGINEERING PLASTICS
HIGH PERFORMANCE POLYMERS AND ENGINEERING PLASTICS (HB)
HYBRID NANOMATERIALS
HYBRID NANOMATERIALS
HYBRID NANOMATERIALS (HB)
IN-SITU SYNTHESIS OF POLYMER NANOCOMPOSITES
IN-SITU SYNTHESIS OF POLYMER NANOCOMPOSITES
IN-SITU SYNTHESIS OF POLYMER NANOCOMPOSITES
IN-SITU SYNTHESIS OF POLYMER NANOCOMPOSITES (HB)
MANUFACTURING OF NANOCOMPOSITES WITH ENGINEERING PLASTICS (HB)
METAL ORGANIC FRAMEWORKS (HB)
MINIEMULSION POLYMERIZATION TECHNOLOGY
MINIEMULSION POLYMERIZATION TECHNOLOGY
MINIEMULSION POLYMERIZATION TECHNOLOGY
MINIEMULSION POLYMERIZATION TECHNOLOGY (HB)
MODELING AND PREDICTION OF POLYMER NANOCOMPOSITE PROPERTIES
MODELING AND PREDICTION OF POLYMER NANOCOMPOSITE PROPERTIES
MODELING AND PREDICTION OF POLYMER NANOCOMPOSITE PROPERTIES
MODELING AND PREDICTION OF POLYMER NANOCOMPOSITE PROPERTIES (HB)
NANOCOMPOSITES WITH BIODEGRADABLE POLYMERS (HB)
NANOTECHNOLOGY: FUNDAMENTALS, MATERIALS (HB)
OPTIMIZATION OF POLYMER NANOCOMPOSITE PROPERTIES
OPTIMIZATION OF POLYMER NANOCOMPOSITE PROPERTIES (HB)
ORGANIC MODIFICATIONS OF CLAY AND POLYMER SURFACES
POLYMER BRUSHES
POLYMER BRUSHES (HB)
POLYMER NANOCOMPOSITE COATINGS
POLYMER NANOCOMPOSITE COATINGS (HB)
POLYMER NANOCOMPOSITE FOAMS
POLYMER NANOCOMPOSITE FOAMS (HB)
POLYMER NANOCOMPOSITES BY EMULSION AND SUSPENSION POLYMERIZATION
POLYMER NANOCOMPOSITES BY EMULSION AND SUSPENSION POLYMERIZATION (HB)
POLYMER NANOTUBE NANOCOMPOSITES (HB)
POLYMER NANOTUBES NANOCOMPOSITES
POLYMER NANOTUBES NANOCOMPOSITES
POLYMER NANOTUBES NANOCOMPOSITES (HB)
POLYMER-GRAPHENE NANOCOMPOSITES
POLYMER-GRAPHENE NANOCOMPOSITES (HB)
POLYMERS AND POLYMER NANOCOMPOSITES: DEV (HB)
POLYMERS FOR ENERGY STORAGE AND CONVERSION
POLYMERS FOR ENERGY STORAGE AND CONVERSION
POLYMERS FOR ENERGY STORAGE AND CONVERSION
POLYMERS FOR ENERGY STORAGE AND CONVERSION
POLYMERS FOR ENERGY STORAGE AND CONVERSION (HB)
POLYMERS IN OIL AND GAS INDUSTRY (PB)
POROUS POLYMER NETWORKS (HB)
RECENT ADVANCES IN ELASTOMERIC NANOCOMPOSITES (HB)
RECENT ADVANCES IN ELASTOMERIC NANOCOMPOSITES (PB)
RENEWABLE POLYMERS
RENEWABLE POLYMERS
RENEWABLE POLYMERS
RENEWABLE POLYMERS
RENEWABLE POLYMERS (HB)
SPHERICAL AND FIBROUS FILLER COMPOSITES
SPHERICAL AND FIBROUS FILLER COMPOSITES
SPHERICAL AND FIBROUS FILLER COMPOSITES
SPHERICAL AND FIBROUS FILLER COMPOSITES (HB)
SURFACE MODIFICATION OF NANOPARTICLE AND NATURAL FIBER FILLERS
SURFACE MODIFICATION OF NANOPARTICLE AND NATURAL FIBER FILLERS
SURFACE MODIFICATION OF NANOPARTICLE AND NATURAL FIBER FILLERS
SURFACE MODIFICATION OF NANOPARTICLE AND NATURAL FIBER FILLERS (HB)
SURFACE MODIFICATION OF NANOTUBE FILLERS
SURFACE MODIFICATION OF NANOTUBE FILLERS
SURFACE MODIFICATION OF NANOTUBE FILLERS
SURFACE MODIFICATION OF NANOTUBE FILLERS (HB)
SYNTHESIS TECHNIQUES FOR POLYMER NANOCOMPOSITES
SYNTHESIS TECHNIQUES FOR POLYMER NANOCOMPOSITES
SYNTHESIS TECHNIQUES FOR POLYMER NANOCOMPOSITES
SYNTHESIS TECHNIQUES FOR POLYMER NANOCOMPOSITES (HB)
THERMALLY STABLE AND FLAME RETARDANT POLYMER NANOCOMPOSITES
THERMALLY STABLE AND FLAME RETARDANT POLYMER NANOCOMPOSITES (HB)
THERMOSET NANOCOMPOSITES
THERMOSET NANOCOMPOSITES
THERMOSET NANOCOMPOSITES
THERMOSET NANOCOMPOSITES (HB)

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