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Design and Regulation of Lower Disorder-to-Order Transition Behavior in the Strongly Interacting Block Copolymers.

Authors :
Rui-Yang Wang
Xiao-Shuai Guo
Bin Fan
Shu-Fen Zou
Xiao-Han Cao
Zai-Zai Tong
Jun-Ting Xu
Bin-Yang Du
Zhi-Qiang Fan
Source :
Macromolecules. 3/27/2018, Vol. 51 Issue 6, p2302-2311. 10p.
Publication Year :
2018

Abstract

Lower disorder-to-order transition (LDOT) phase behavior is seldom observed in block copolymers (BCPs). Design of LDOT BCPs is important for broadening the applications and improving the high temperature properties of BCPs. In this work, the LDOT phase behavior was first achieved in the strongly interacting BCPs consisting of poly(ethylene oxide) (PEO) and poly(ionic liquid) (PIL) blocks (EOm-b-(IL-X)n, X: counterion) by introducing two extra strong forces (hydrogen-bonding and Coulombic interaction) with different temperature dependences. It is also found that the LDOT phase behavior of the EOm-b-(IL-X)n BCPs can be regulated by molecular weight (related to mixing entropy), counterion, and salt doping. Increasing counterion size and salt content shifts the disorder-to-order transition temperature (TDOT) to higher temperature, whereas a higher molecular weight leads to a lower TDOT. Based on our findings, some general rules for design of LDOT phase behavior in the strongly interacting BCPs were proposed. Moreover, the conductivity of the EOm-b-(IL-X)n BCPs was correlated with the LDOT phase behavior. A remarkable increase in conductivity after LDOT, i.e., a thermo-activated transition, is observed for the EOm-b-(IL-X)n BCPs, which can be attributed to the cooperative effects of temperature rising and LDOT. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00249297
Volume :
51
Issue :
6
Database :
Academic Search Index
Journal :
Macromolecules
Publication Type :
Academic Journal
Accession number :
128778724
Full Text :
https://doi.org/10.1021/acs.macromol.8b00227