Issue 22, 2024

Optically transparent and mechanically tough glass with impact resistance and flame retardancy enabled by covalent/supramolecular interactions

Abstract

Exploring glass materials beyond inorganic components represents a new direction in the development of artificial transparent materials. Inspired by the successes of polymeric and supramolecular glasses, we shifted our attention to the preparation of a transparent glass through the polymerization of low-molecular-weight monomers that are naturally tailored with noncovalent recognition motifs. In this work, an imidazolium unit bearing a vinyl group and a tetrafluoroborate counter anion was selected to construct an artificial glass. Experimental and theoretical investigations revealed that the cross-linking behavior of anions effectively transformed linear polymeric chains into three-dimensional networks. The polymeric–supramolecular glass exhibits a tough tensile strength (61.31 MPa), high Young's modulus (1.17 GPa), and good optical transparency (>90%), which are comparable to those of polymethyl methacrylate. Moreover, the obtained glass maintains excellent mechanical toughness and optical transparency over a wide temperature range (from −150 to 150 °C). The material shows a superior impact resistance (18.34 kJ m−2) and flame retardancy (V0 rating), which are barely achieved by supramolecular materials.

Graphical abstract: Optically transparent and mechanically tough glass with impact resistance and flame retardancy enabled by covalent/supramolecular interactions

Supplementary files

Article information

Article type
Communication
Submitted
13 Jun 2024
Accepted
28 Aug 2024
First published
29 Aug 2024

Mater. Horiz., 2024,11, 5732-5739

Optically transparent and mechanically tough glass with impact resistance and flame retardancy enabled by covalent/supramolecular interactions

C. Cai, G. Yao, Y. Zhang, S. Zhang, F. Li, Z. Tan and S. Dong, Mater. Horiz., 2024, 11, 5732 DOI: 10.1039/D4MH00750F

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