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The microstructure of the 50/50 blend demonstrates a phase size (dv) of 8.5 μm at 230 °C and 1.1 μm at 155 °C.
Compared to a non-reactive poly isobutylene-co-p-methylstyrene) (IMSM)/poly isobutylene-co-p-methylstyrenend demonstrates a rapoly isobutylene-co-p-methylstyrene viscosity, and attains a poly isobutylene-co-p-methylstyrenetures.
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The modified polymer blend demonstrate consistent polarization across the frequency band 50 Hz–10 kHz.
The device with P4 PC71BM blend demonstrated an open-circuit voltage (VOC) of 0.59 V, a short-circuit current (JSC) of 6.43 mandm2, and a fill factor (FF) of 0.39, leading to the efficiency of 1.46%.
The behavior of distribution densities and order parameters of the compatibilized blends demonstrates that mixing properties improve significantly, in agreement with experimental evidences.
Moreover, the incorporation of sc-PLA micro-particles significantly enhances the mechanical property of PMMA and the maximum (≈103 MPa) of these blends demonstrates 50% increase than that (≈70 MPa) of PMMA.
Both blends demonstrated improved biocompatibility in a rat subcutaneous implantation model compared to PLAGA over 12 weeks.
Furthermore, blends demonstrated significantly higher osteoblast growth rates compared to PLAGA while maintaining osteoblast phenotype over a 21-day culture.
The observed glass transition temperature shift of XNBR/SBR blends demonstrated the improved compatibility of XNBR and SBR.
For the most part, ternary polymer blends demonstrate complete wetting behavior.
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