Abstract
To produce a multifunctional silica aerogel with excellent stability under humid and high-temperature conditions, bifunctionalized hybrid silica aerogels (BHSAs) were created by a simple and eco-friendly self-catalyzed sol-gel process. BHSA can be used for thermal insulation and CO2 capture with high durability with two functional groups including methyl and amine hybridized. The highest specific surface area (343 m2/g), pore volume (1.66 cm3/g), and surface amine content (2.14 mmol/g) were attained by TMA262 with an appropriate tetraethoxysilane (TEOS)/methyltriethoxysilane (MTES) molar ratio, as well as a water contact angle of 143°. TMA262 demonstrated high CO2 adsorption capacity (1.87 mmol/g) and kinetics in humid 1% CO2. With a low thermal conductivity at 25 °C (0.019 W/(m·K)), TMA262 exhibited outstanding thermal insulation over the temperature range stretching from −100 to 1300 °C. Accelerated aging and thermal treatment indicated that TMA262 possessed excellent long-term stability for CO2 capture and thermal insulation under humid and high-temperature conditions, and water played a significant role in CO2 adsorption capacity. This study seamlessly integrates a diverse array of functionalities within the silica aerogel, offering significant guidance for the advancement of aerogels tailored for multi-scenario applications under extreme conditions.
Original language | English |
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Journal | Green Chemical Engineering |
DOIs | |
State | Accepted/In press - 2025 |
Keywords
- CO capture
- Long-term stability
- Self-catalyzed
- Silica aerogel
- Thermal insulation