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Structure-induced switching of interpolymer adhesion at a solid–polymer melt interface

Authors :
Mani Sen
Masafumi Fukuto
Justin Cheung
Naisheng Jiang
Sushil K. Satija
Wenduo Zeng
Maya K. Endoh
Guangcui Yuan
Yuma Morimitsu
Jan-Michael Y. Carrillo
Zhizhao Chen
Bobby G. Sumpter
Tadanori Koga
Source :
Soft Matter. 14:1108-1119
Publication Year :
2018
Publisher :
Royal Society of Chemistry (RSC), 2018.

Abstract

Here we report a link between the interfacial structure and adhesive property of homopolymer chains physically adsorbed (i.e., via physisorption) onto solids. Polyethylene oxide (PEO) was used as a model and two different chain conformations of the adsorbed polymer were created on silicon substrates via the well-established Guiselin's approach: "flattened chains" which lie flat on the solid and are densely packed, and "loosely adsorbed polymer chains" which form bridges jointing up nearby empty sites on the solid surface and cover the flattened chains. We investigated the adhesion properties of the two different adsorbed chains using a custom-built adhesion testing device. Bilayers of a thick PEO overlayer on top of the flattened chains or loosely adsorbed chains were subjected to the adhesion test. The results revealed that the flattened chains do not show any adhesion even with the chemically identical free polymer on top, while the loosely adsorbed chains exhibit adhesion. Neutron reflectivity experiments corroborated that the difference in the interfacial adhesion is not attributed to the interfacial brodening at the free polymer-adsorbed polymer interface. Instead, coarse-grained molecular dynamics simulation results suggest that the tail parts of the loosely adsorbed chains act as "connector molecules", bridging the free chains and substrate surface and improving the interfacial adhesion. These findings not only shed light on the structure-property relationship at the interface, but also provide a novel approach for developing sticking/anti-sticking technologies through precise control of the interfacial polymer nanostructures.

Details

ISSN :
17446848 and 1744683X
Volume :
14
Database :
OpenAIRE
Journal :
Soft Matter
Accession number :
edsair.doi.dedup.....e7141fc06391f5f556c496944f9ab851