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用于高温隔热的超高强度碳气凝胶

Ultrahigh-strength carbon aerogels for high temperature thermal insulation.

作者信息

Wu Kede, Zhou Qi, Cao Junxiang, Qian Zhen, Niu Bo, Long Donghui

机构信息

Shanghai Key Laboratory of Multiphase Materials Chemical Engineering, East China University of Science and Technology, School of Chemical Engineering, Shanghai 200237, PR China.

Shanghai Key Laboratory of Multiphase Materials Chemical Engineering, East China University of Science and Technology, School of Chemical Engineering, Shanghai 200237, PR China.

出版信息

J Colloid Interface Sci. 2022 Mar;609:667-675. doi: 10.1016/j.jcis.2021.11.067. Epub 2021 Nov 17.

Abstract

Carbon aerogels with nanoporous structure are attractive for thermal insulation under extreme conditions, but their practical applications are usually plagued by the inherent brittleness and easy-oxidation characteristic at high temperature. Herein, silica-modified carbon aerogels (SCAs) with extraordinarily high strength are prepared via a facile sol-gel polymerization of phenolic resin and siloxane, followed by ambient pressure drying and carbonization. The resulting SCAs possess medium-high density of ∼0.5 g·cm and mesoporous structure with the mean pore size of 33 nm. During carbonization process, the siloxane could be gradually transformed into the amorphous SiO particles and crystalline SiC particles, which are coated on the surface of carbon nanoparticle and consequently improve the oxidation-resistance of carbon aerogels. Due to the density-porosity trade-off, the SCAs have high compressive strength of 10.0 MPa and satisfied thermal conductivities of 0.118 W·m·K at 25 °C and 0.263 W·m·K at 1000 °C. Furthermore, needled carbon fiber-reinforced SCAs (CF-SCAs) with ultrahigh compressive strength of 210.5 MPa are prepared, which exhibit good thermal conductivities of 0.207 W·m·K at 25 °C and 0.407 W·m·K at 1000 °C. The ultrahigh mechanical strength, good oxidation-resistance, good thermal insulation as well as the facile preparation make the SACs great promising in high-temperature insulations especially under harsh conditions.

摘要

具有纳米多孔结构的碳气凝胶在极端条件下的隔热方面具有吸引力,但其实际应用通常受到高温下固有的脆性和易氧化特性的困扰。在此,通过酚醛树脂和硅氧烷的简便溶胶 - 凝胶聚合,随后进行常压干燥和碳化,制备出具有极高强度的二氧化硅改性碳气凝胶(SCA)。所得的SCA具有约0.5 g·cm的中高密度和平均孔径为33 nm的介孔结构。在碳化过程中,硅氧烷可逐渐转化为无定形SiO颗粒和结晶SiC颗粒,它们包覆在碳纳米颗粒表面,从而提高了碳气凝胶的抗氧化性。由于密度 - 孔隙率的权衡,SCA具有10.0 MPa的高抗压强度,在25°C时热导率为0.118 W·m·K,在1000°C时为0.263 W·m·K。此外,制备出了具有210.5 MPa超高抗压强度的针刺碳纤维增强SCA(CF - SCA),其在25°C时热导率为0.207 W·m·K,在1000°C时为0.407 W·m·K。超高的机械强度、良好的抗氧化性、良好的隔热性以及简便的制备方法使得SCA在高温隔热领域,尤其是在恶劣条件下具有巨大的应用前景。

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