Issue 19, 2022

Thermoresponsive dendritic oligoethylene glycols

Abstract

Monodispersed molecules of low molar masses showing thermoresponsiveness are appealing both for mechanism investigation of the thermally-modulated dehydration and aggregation on molecular levels and for designing functional intelligent materials. In the present report, thermoresponsive properties of a homologous series of monodispersed dendritic macromolecules carrying three-, four- or six-fold dendritic oligoethylene glycol (OEG) segments were investigated. These dendritic macromolecules carry either methoxyl or ethoxyl terminals, and have different cores (alcohol, methyl ester or methacryloyl) to exhibit different overall hydrophilicity. They show characteristic thermoresponsive properties with sharp phase transitions when suitable structural units are combined. Three structural factors determine their phase transition temperatures, including the cores, branching density and peripheral terminals. Thermally-induced collapse and aggregation are monitored with temperature-varied NMR spectroscopy at the microscale level and optical microscopy at the macroscale level. At elevated temperature, these dendritic macromolecules undergo fast exchange between the dehydrated and the hydrated states. These dendritic macromolecules afford structure-dependent confinement to guest dyes through their multi-valent interactions.

Graphical abstract: Thermoresponsive dendritic oligoethylene glycols

Supplementary files

Article information

Article type
Paper
Submitted
17 Mar 2022
Accepted
19 Apr 2022
First published
21 Apr 2022

Phys. Chem. Chem. Phys., 2022,24, 11848-11855

Thermoresponsive dendritic oligoethylene glycols

G. Xu, J. Zhang, M. Qi, X. Zhang, W. Li and A. Zhang, Phys. Chem. Chem. Phys., 2022, 24, 11848 DOI: 10.1039/D2CP01286C

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