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Barrier and Long Term Creep Properties of Polymer Nanocomposites.

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The barrier properties and long term strength retention of polymers are of significant importance in a number of applications. Enhanced lifetime food packaging, substrates for OLED based flexible displays and long duration scientific balloons are among them. Higher material requirements in these applications drive the need for an accurate measurement system. Therefore, a new system was engineered with enhanced sensitivity and accuracy. Permeability of polymers is affected by permeant solubility and diffusion. One effort to decrease diffusion rates is via increasing the transport path length. We explore this through dispersion of layered silicates into polymers. Layered silicates with effective aspect ratio of 1000:1 have shown promise in improving the barrier and mechanical properties of polymers. The surface of these inorganic silicates was modified with surfactants to improve the interaction with organic polymers. The micro and nanoscale dispersion of the layered silicates was probed using optical and transmission microscopy as well as x-ray diffraction. Thermal transitions were analyzed using differential scanning calorimetry. Mechanical and permeability measurements were correlated to the dispersion and increased density. The essential structure-property relationships were established by comparing semicrystalline and amorphous polymers. Semicrystalline polymers selected were nylon-6 and polyethylene terephthalate. The amorphous polymer was polyethylene terphthalate-glycol. Densification due to the layered silicate in both semicrystalline and amorphous polymers was associated with significant impact on barrier and long term creep behavior. The inferences were confirmed by investigating a semi-crystalline polymer - polyethylene - above and below the glass transition. The results show that the layered silicate influences the amorphous segments in polymers and barrier properties are affected by synergistic influences of densification and uniform dispersion of the layered silicates.
University of North Texas Libraries
Title: Barrier and Long Term Creep Properties of Polymer Nanocomposites.
Description:
The barrier properties and long term strength retention of polymers are of significant importance in a number of applications.
Enhanced lifetime food packaging, substrates for OLED based flexible displays and long duration scientific balloons are among them.
Higher material requirements in these applications drive the need for an accurate measurement system.
Therefore, a new system was engineered with enhanced sensitivity and accuracy.
Permeability of polymers is affected by permeant solubility and diffusion.
One effort to decrease diffusion rates is via increasing the transport path length.
We explore this through dispersion of layered silicates into polymers.
Layered silicates with effective aspect ratio of 1000:1 have shown promise in improving the barrier and mechanical properties of polymers.
The surface of these inorganic silicates was modified with surfactants to improve the interaction with organic polymers.
The micro and nanoscale dispersion of the layered silicates was probed using optical and transmission microscopy as well as x-ray diffraction.
Thermal transitions were analyzed using differential scanning calorimetry.
Mechanical and permeability measurements were correlated to the dispersion and increased density.
The essential structure-property relationships were established by comparing semicrystalline and amorphous polymers.
Semicrystalline polymers selected were nylon-6 and polyethylene terephthalate.
The amorphous polymer was polyethylene terphthalate-glycol.
Densification due to the layered silicate in both semicrystalline and amorphous polymers was associated with significant impact on barrier and long term creep behavior.
The inferences were confirmed by investigating a semi-crystalline polymer - polyethylene - above and below the glass transition.
The results show that the layered silicate influences the amorphous segments in polymers and barrier properties are affected by synergistic influences of densification and uniform dispersion of the layered silicates.

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