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Phase behavior of polystyrene and poly(n-pentyl methacrylate) blend with small amounts of symmetric polystyrene-block-poly(n-pentyl methacrylate) copolymers SCIE SCOPUS

Title
Phase behavior of polystyrene and poly(n-pentyl methacrylate) blend with small amounts of symmetric polystyrene-block-poly(n-pentyl methacrylate) copolymers
Authors
Kim, JKJang, JLee, DHRyu, DY
Date Issued
2004-11-16
Publisher
AMER CHEMICAL SOC
Abstract
The phase behavior of polystyrene and poly(n-pentyl methacrylate) (PS/PnPMA) blends with small amounts of symmetric PS-block-PnPMA copolymer (PS-b-PnPMA) was studied by turbidity, light scattering, and small-angle neutron scattering (SANS). At ambient pressure, PS/PnPMA with lower molecular weights exhibited both the upper critical solution transition (UCST) and the lower critical solution transition (LCST), and with increasing molecular weights of PS, an hourglass type of phase behavior was observed. When a very small amount (similar to0.5 wt %) of symmetric PS-b-PnPMA is added to the blend, LCST increases but UCST decreases. This indicates that the miscibility window is expanded, and the PS-b-PnPMA acts as an effective compatibilizer in the PS/PnPMA blend. However, when the amount of symmetric PS-b-PnPMA is larger than a critical amount which depends on the molecular weight of block copolymers, the turbidity temperatures (T-b) for the LCST are essentially the same regardless of blend compositions. Thus, the turbidity temperature for the LCST of an asymmetric blend composition (for instance, 20/80 (w/w) or 80/20 (w/w) PS/PnPMA blend) with a symmetric PS-b-PnPMA was lower than that for another blend without the block copolymer, suggesting that the block copolymer does not act as a compatibilizer for asymmetric blend compositions. This interesting phase behavior was discussed in terms of the segmental interaction parameter (chi) measured by SANS and compared with predictions by the incompressible mean-field theory and the lattice cluster theory.
Keywords
MULTICOMPONENT POLYMER SYSTEMS; MEAN-FIELD-THEORY; BLOCK-COPOLYMER; SPINODAL DECOMPOSITION; SEPARATION KINETICS; HOMOPOLYMER BLENDS; LIGHT-SCATTERING; DEPENDENCE; STABILITY; PARAMETER
URI
https://oasis.postech.ac.kr/handle/2014.oak/24930
DOI
10.1021/MA048567D
ISSN
0024-9297
Article Type
Article
Citation
MACROMOLECULES, vol. 37, no. 23, page. 8599 - 8605, 2004-11-16
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김진곤KIM, JIN KON
Dept. of Chemical Enginrg
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