Issue 11, 2021

Facile preparation of a phenyl-reinforced flexible silica aerogel with excellent thermal stability and fire resistance

Abstract

How to improve the thermal stability and flame resistance of a silica aerogel while enhancing its mechanical properties and hydrophobicity is a major challenge. In this work, phenyltriethoxysilane (PTES) was introduced into a binary silicon source system formed by methyltriethoxysilane (MTES) and dimethyldiethoxysilane (DEDMS), and a phenyl-enhanced flexible aerogel was prepared by a simple sol–gel process and ambient pressure drying, avoiding long time solvent exchange and surface modification. The results show that the prepared aerogel exihibits low density (0.082 g cm−3), high porosity (94.2%) and high specific surface area (162.1 m2 g−1). A membrane-like structure derived from PTES strengthens the original flexible skeleton and makes the aerogel framework change from a spherical particulate structure to a non-particulate structure. Compared with common flexible silica aerogels, the phenyl-enhanced flexible silica aerogel shows more excellent mechanical properties and hydrophobility (a contact angle as high as 159.8°), and the maximum degradation rate temperature in N2 conditions is improved by over 150 °C, reaching up to 742.9 °C. Moreover, the enhanced silica aerogel even exhibits outstanding flame resistance. With the excellent hydrophobility, mechanical properties, oil–water separation capacity, thermal stability, and flame resistance, the phenyl-enhanced flexible silica aerogel can be applied in some extreme conditions with high temperature and high humidity.

Graphical abstract: Facile preparation of a phenyl-reinforced flexible silica aerogel with excellent thermal stability and fire resistance

Supplementary files

Article information

Article type
Research Article
Submitted
05 Feb 2021
Accepted
24 Mar 2021
First published
26 Mar 2021

Mater. Chem. Front., 2021,5, 4214-4224

Facile preparation of a phenyl-reinforced flexible silica aerogel with excellent thermal stability and fire resistance

Y. Zhang, Q. Shen, X. Li, L. Wang and C. Nie, Mater. Chem. Front., 2021, 5, 4214 DOI: 10.1039/D1QM00206F

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