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The micellar behavior of this copolymer was investigated as a function of the external environment.
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As seen, the results of LPR confirm the inhibitive behavior of the copolymer, and it is in agreement with the results obtained from potentiodynamic polarization and EIS measurements.
The influence of pH on the swelling behavior of the copolymer films was determined and interpreted.
The synthesis was done in the presence of catalytic amount of KPS as an initiator and the adsorption behavior of the copolymer (360%G) was investigated by performing both the kinetics and equilibrium studies in batch conditions.
The pH-responsive micellization behavior of the copolymer was studied using dynamic light scattering (DLS), steady state fluorescence and TEM techniques.
The effect of macromolecular architecture on the association behavior of the copolymers was also examined.
The degradation behavior of these copolymers was investigated in a pH=7.4 phosphate buffer at 37°C.
In addition, the thermal behavior of these copolymers was studied by thermogravimetric analysis (TGA).
We find that the critical chain length of PEO plays a key role on the structure-property behavior of these copolymers.
The random or block structure and thermal behavior of the copolymers have been characterized by SEC, NMR, DSC, XRD and PLM.
The self-assembly behavior of the copolymers in water was investigated and characterized using fluorescence probe, dynamic light scattering (DLS) and SEM.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com