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CO2/N2‑Switchable Thermoresponsive Ionic Liquid...
Journal article

CO2/N2‑Switchable Thermoresponsive Ionic Liquid Copolymer

Abstract

Thermoresponsive random copolymers consisting of poly­(N-isopropyl­acrylamide) (PNIPAM) and polymerized ionic liquid (IL) poly­(1,1,3,3-tetramethyl­guanidine acrylate) (PTMGA) were synthesized via reversible addition–fragmentation chain transfer radical polymerization (RAFT). The reactivity ratios of NIPAM (r NIPAM = 2.11) and TMGA (r TMGA = 0.56) were determined by the extended Kelen–Tödüs method. Glass transition temperatures (T g) of the copolymers were analyzed, which followed the Fox equation very well. The phase transition behaviors of the copolymers in aqueous solution were studied through UV–vis transmission measurements. Their lower critical solution temperature (LCST) ranged from 30.5 to 73.2 °C, depending on the hydrophilic IL content. The apparent pK a related to LCST was determined, and thus the protonation degree was calculated. The hydrophilicity of the copolymers could be regulated by gas treatments. Bubbling CO2 led to lowering the transition temperature while bubbling N2 resulted in its recovery. This CO2/N2 switchability became more profound with higher IL content. With the ability to undergo reversible protonation caused by the change of pH, the system showed good reversibility in LCST when bubbled with CO2 and N2. SO2 could also be used to lower LCST. However, a basic compound (e.g., NaOH) was required for its recovery. The pH-dependent solution phase transition behavior provided great insight into the LCST regulation mechanism. The widest LCST shifting window (∼12 °C) was found between pH 5.16 and 5.96, which could be fulfilled by the CO2 regulation approach. This work provides guidance for the design and synthesis of gas-switchable thermoresponsive polymers based on ionic liquids.

Authors

Zhou Y-N; Lei L; Luo Z-H; Zhu S

Journal

Macromolecules, Vol. 50, No. 21, pp. 8378–8389

Publisher

American Chemical Society (ACS)

Publication Date

November 14, 2017

DOI

10.1021/acs.macromol.7b01456

ISSN

0024-9297

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