Structural Evolution of Two-Phase Blends of Polycarbonate and PMMA by Simultaneous Biaxial Stretching

We investigated the structural evolution of the two-phase blends of polycarbonate (PC) and poly(methyl methacrylate) (PMMA) at various blend compositions by simultaneous biaxial stretching, using optical microscopy and SEM observation. The spherical PMMA domains and PC matrix of 30/70 PC/PMMA were e...

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Main Authors: Takumi Kobayashi, Hiromu Saito
Format: Article
Language:English
Published: MDPI AG 2018-08-01
Series:Polymers
Subjects:
Online Access:http://www.mdpi.com/2073-4360/10/9/950
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spelling doaj-44657093e66645819fea1870e7e8312f2020-11-24T21:32:41ZengMDPI AGPolymers2073-43602018-08-0110995010.3390/polym10090950polym10090950Structural Evolution of Two-Phase Blends of Polycarbonate and PMMA by Simultaneous Biaxial StretchingTakumi Kobayashi0Hiromu Saito1Department of Organic and Polymer Materials Chemistry, Tokyo University of Agriculture and Technology, Koganei-shi, Tokyo 184-8588, JapanDepartment of Organic and Polymer Materials Chemistry, Tokyo University of Agriculture and Technology, Koganei-shi, Tokyo 184-8588, JapanWe investigated the structural evolution of the two-phase blends of polycarbonate (PC) and poly(methyl methacrylate) (PMMA) at various blend compositions by simultaneous biaxial stretching, using optical microscopy and SEM observation. The spherical PMMA domains and PC matrix of 30/70 PC/PMMA were enlarged uniformly at the all in-plane direction, while the anisotropic-shaped co-continuous structure in 50/50 PC/PMMA was deformed to a crosshatched structure by the in-plane bimodal orientation. In 70/30 PC/PMMA, the phase inversion was found to occur by simultaneous biaxial stretching; that is, the spherical PMMA domains were changed to a crosshatched matrix by the in-plane bimodal orientation due to coalescence of the PMMA domains during the stretching. Owing to the phase inversion, the surface hardness estimated by the pencil hardness test became harder, from 2B to 2H, increasing the strain from 1.0 to 2.0.http://www.mdpi.com/2073-4360/10/9/950biaxial stretchingblendpolycarbonatePMMAphase inversionsurface hardness
collection DOAJ
language English
format Article
sources DOAJ
author Takumi Kobayashi
Hiromu Saito
spellingShingle Takumi Kobayashi
Hiromu Saito
Structural Evolution of Two-Phase Blends of Polycarbonate and PMMA by Simultaneous Biaxial Stretching
Polymers
biaxial stretching
blend
polycarbonate
PMMA
phase inversion
surface hardness
author_facet Takumi Kobayashi
Hiromu Saito
author_sort Takumi Kobayashi
title Structural Evolution of Two-Phase Blends of Polycarbonate and PMMA by Simultaneous Biaxial Stretching
title_short Structural Evolution of Two-Phase Blends of Polycarbonate and PMMA by Simultaneous Biaxial Stretching
title_full Structural Evolution of Two-Phase Blends of Polycarbonate and PMMA by Simultaneous Biaxial Stretching
title_fullStr Structural Evolution of Two-Phase Blends of Polycarbonate and PMMA by Simultaneous Biaxial Stretching
title_full_unstemmed Structural Evolution of Two-Phase Blends of Polycarbonate and PMMA by Simultaneous Biaxial Stretching
title_sort structural evolution of two-phase blends of polycarbonate and pmma by simultaneous biaxial stretching
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2018-08-01
description We investigated the structural evolution of the two-phase blends of polycarbonate (PC) and poly(methyl methacrylate) (PMMA) at various blend compositions by simultaneous biaxial stretching, using optical microscopy and SEM observation. The spherical PMMA domains and PC matrix of 30/70 PC/PMMA were enlarged uniformly at the all in-plane direction, while the anisotropic-shaped co-continuous structure in 50/50 PC/PMMA was deformed to a crosshatched structure by the in-plane bimodal orientation. In 70/30 PC/PMMA, the phase inversion was found to occur by simultaneous biaxial stretching; that is, the spherical PMMA domains were changed to a crosshatched matrix by the in-plane bimodal orientation due to coalescence of the PMMA domains during the stretching. Owing to the phase inversion, the surface hardness estimated by the pencil hardness test became harder, from 2B to 2H, increasing the strain from 1.0 to 2.0.
topic biaxial stretching
blend
polycarbonate
PMMA
phase inversion
surface hardness
url http://www.mdpi.com/2073-4360/10/9/950
work_keys_str_mv AT takumikobayashi structuralevolutionoftwophaseblendsofpolycarbonateandpmmabysimultaneousbiaxialstretching
AT hiromusaito structuralevolutionoftwophaseblendsofpolycarbonateandpmmabysimultaneousbiaxialstretching
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