Issue 8, 2025

In situ formation of ultrahigh molecular weight polymers in highly concentrated electrolytes and their physicochemical properties

Abstract

We developed a facile one-pot method for fabricating physical gels consisting of ultrahigh molecular weight (UHMW) polymers and highly concentrated lithium salt electrolytes. We previously reported physical gels formed from the entanglement of UHMW polymers by radical polymerisation in aprotic ionic liquids. In this study, we found that the molecular weight of methacrylate polymers formed by radical polymerisation increased with the concentration of lithium salts in the organic solvents. Consequently, the synthesis of UHMW polymers with a high monomer conversion was achieved at very low initiator concentrations, leading to the formation of physical gels in highly concentrated electrolytes by the chain entanglement of UHMW polymers. The viscoelastic and mechanical properties of the UHMW gel electrolytes and their self-healing properties were investigated in detail.

Graphical abstract: In situ formation of ultrahigh molecular weight polymers in highly concentrated electrolytes and their physicochemical properties

Supplementary files

Article information

Article type
Paper
Submitted
24 Oct 2024
Accepted
09 Jan 2025
First published
10 Jan 2025
This article is Open Access
Creative Commons BY-NC license

Soft Matter, 2025,21, 1471-1478

In situ formation of ultrahigh molecular weight polymers in highly concentrated electrolytes and their physicochemical properties

Y. Kamiyama, T. Ueki and R. Tamate, Soft Matter, 2025, 21, 1471 DOI: 10.1039/D4SM01248H

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