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However, the blend behavior of these polymers is relatively unexplored.
Mechano-optical behavior of these polymers exhibited multiple regime behavior.
Thermally activated crosslinking behavior of these polymers was investigated by differential scanning calorimetry (DSC).
Moreover, the spreading behavior of these polymers on low energy surface was found to be influenced by the number of hydrophilic APGE groups.
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The behavior of these polymer constituents determines the performance, such as functionality and reliability, of the final products.
Electrochemical behavior of these new polymers depicted facile p-doping and good electron-transporting properties.
The solution behavior of these modified polymers was evaluated by emulsification assay and found to be significantly higher when evaluated against short chain alkanes and lower against long chain alkanes, when compared with native emulsan.
An empirical modification of the so-called compressible Leonov model by a strain dependent activation volume is suggested, which describes the strain-rate dependent large strain behavior of these glassy polymers in good agreement with experimental data.
These morphological differences indicate that the deformation and the orientation behavior of the polymers' domains differ.
These model compounds were also used to study the influence of the acetoxy group orientation on the thermal stability and photoluminescence behavior of the polymers.
Also the thermal behavior of the polymers was obtained from the STA STA S-1500 Scinco model made in Korea.
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behavior of these interfaces
behavior of these lesions
behavior of these elements
behavior of these tumors
behavior of these nanocomposites
behavior of these species
behavior of these mice
behavior of these films
behavior of these molecules
behavior of these coatings
behavior of these copolymers
behavior of these strains
behavior of these samples
behavior of these particles
behavior of these mixtures
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