3 D ‐morphology reconstruction of nanoscale phase‐separation in polymer memory blends
Author(s) -
Khikhlovskyi Vsevolod,
van Breemen Albert J. J. M.,
Michels Jasper J.,
Janssen René A. J.,
Gelinck Gerwin H.,
Kemerink Martijn
Publication year - 2015
Publication title -
journal of polymer science part b: polymer physics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.65
H-Index - 145
eISSN - 1099-0488
pISSN - 0887-6266
DOI - 10.1002/polb.23769
Subject(s) - materials science , nanoscopic scale , polymer , polymer blend , wetting layer , ferroelectricity , wetting , phase (matter) , electrode , layer (electronics) , morphology (biology) , thin film , nanotechnology , active layer , non volatile memory , chemical engineering , composite material , copolymer , optoelectronics , chemistry , organic chemistry , biology , dielectric , genetics , thin film transistor , engineering
In many organic electronic devices functionality is achieved by blending two or more materials, typically polymers or molecules, with distinctly different optical or electrical properties in a single film. The local scale morphology of such blends is vital for the device performance. Here, a simple approach to study the full 3D morphology of phase‐separated blends, taking advantage of the possibility to selectively dissolve the different components is introduced. This method is applied in combination with AFM to investigate a blend of a semiconducting and ferroelectric polymer typically used as active layer in organic ferroelectric resistive switches. It is found that the blend consists of a ferroelectric matrix with three types of embedded semiconductor domains and a thin wetting layer at the bottom electrode. Statistical analysis of the obtained images excludes the presence of a fourth type of domains. The criteria for the applicability of the presented technique are discussed. © 2015 Wiley Periodicals, Inc. J. Polym. Sci., Part B: Polym. Phys. 2015 , 53 , 1231–1237
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