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Elastic Methyltrimethoxysilane Based Silica Aerogels Reinforced with Polyvinylmethyldimethoxysilane

Overview
Journal RSC Adv
Specialty Chemistry
Date 2022 May 6
PMID 35515298
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Abstract

Native silica aerogels are fragile and brittle, which prevents their wider utility. For designing more durable and stronger silica aerogels, polyvinylmethyldimethoxysilane (PVMDMS) polymers as effective and multifunctional reinforcing agents were used to strengthen methyltrimethoxysilane based silica aerogels (MSAs). The PVMDMS polymer, which was composed of long-chain aliphatic hydrocarbons and organic side-chain methyl and alkoxysilane groups, was integrated into silica networks a simple sol-gel process. Compared with MSAs, PVMDMS reinforced MSAs (PRMSAs) display many fascinating characteristics. PRMSAs exhibit improved hydrophobic properties (water contact angle of 136.9°) due to abundant methyl groups in the silica networks. Benefiting from the fine integration of PVMDMS polymers into MSAs, PRMSAs show a perfectly elastic recovery property, the compressive strength of which ranges from 0.19 to 1.98 MPa. More importantly, PVMDMS polymers have successfully suppressed the growth of secondary particles. Homogeneous silica networks formed by nanoscale particles give PRMSAs a high surface area of 1039 m g. Moreover, optimized PRMSAs also exhibit a low thermal conductivity of 0.0228 W m K under ambient conditions, and their thermal stability reaches up to 222.3 °C in air. All the results obtained from this paper will help us to design silica aerogels.

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References
1.
Nguyen B, Meador M, Tousley M, Shonkwiler B, McCorkle L, Scheiman D . Tailoring elastic properties of silica aerogels cross-linked with polystyrene. ACS Appl Mater Interfaces. 2010; 1(3):621-30. DOI: 10.1021/am8001617. View

2.
Wang J, Zhang X . Binary Crystallized Supramolecular Aerogels Derived from Host-Guest Inclusion Complexes. ACS Nano. 2015; 9(11):11389-97. DOI: 10.1021/acsnano.5b05281. View

3.
Zu G, Shimizu T, Kanamori K, Zhu Y, Maeno A, Kaji H . Transparent, Superflexible Doubly Cross-Linked Polyvinylpolymethylsiloxane Aerogel Superinsulators via Ambient Pressure Drying. ACS Nano. 2018; 12(1):521-532. DOI: 10.1021/acsnano.7b07117. View

4.
Reichenauer G, Scherer G . Effects upon Nitrogen Sorption Analysis in Aerogels. J Colloid Interface Sci. 2001; 236(2):385-386. DOI: 10.1006/jcis.2000.7419. View

5.
Zu G, Kanamori K, Maeno A, Kaji H, Nakanishi K . Superflexible Multifunctional Polyvinylpolydimethylsiloxane-Based Aerogels as Efficient Absorbents, Thermal Superinsulators, and Strain Sensors. Angew Chem Int Ed Engl. 2018; 57(31):9722-9727. DOI: 10.1002/anie.201804559. View