## Abstract **Summary:** The toughness of poly(styrene‐__block__‐butadiene) star block copolymer/polystyrene (PS) blends have been investigated using the essential‐work‐of‐fracture approach. The blends show a co‐continuous or layer‐like structure of polystyrene‐rich and polybutadiene‐rich domains a
Influence of the extrusion process on the morphology and micromechanical behavior of polystyrene-block-(polystyrene-co-butadiene)-block-polystyrene star block copolymer/homopolystyrene blends
✍ Scribed by M. Buschnakowski; R. Adhikari; G. H. Michler; K. Knoll
- Publisher
- John Wiley and Sons
- Year
- 2007
- Tongue
- English
- Weight
- 909 KB
- Volume
- 106
- Category
- Article
- ISSN
- 0021-8995
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✦ Synopsis
Abstract
The influence of the extrusion process on the morphology and micromechanical behavior of an asymmetric polystyrene‐block‐(polystyrene‐co‐butadiene)‐block‐polystyrene (SBS) star block copolymer and its blends with general‐purpose homopolystyrene (hPS) was studied with films prepared with a single‐screw extruder. The techniques used were transmission electron microscopy and uniaxial tensile testing. Unlike the pure SBS block copolymer possessing a gyroid‐like morphology, whose deformation was found to be insensitive to the processing conditions, the mechanical properties of the blends strongly depended on the extrusion temperature as well as the apparent shear rate. The deformation micromechanism was primarily dictated by the blend morphology. The yielding and cavitation of the nanostructures were the principal deformation mechanism for the blends having a droplet‐like microphase‐separated morphology, whereas cavitation dominated for the blends containing macrophase‐separated layers of polystyrene. The mechanical properties of the blends were further examined with respect to the influence of the temperature and shear rate on the phase behavior of the blends. © 2007 Wiley Periodicals, Inc. J Appl Polym Sci, 2007
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