首页> 外文期刊>Journal of Non-Crystalline Solids: A Journal Devoted to Oxide, Halide, Chalcogenide and Metallic Glasses, Amorphous Semiconductors, Non-Crystalline Films, Glass-Ceramics and Glassy Composites >Preparation of compressible silica aerogel reinforced by bacterial cellulose using tetraethylorthosilicate and methyltrimethoxylsilane co-precursor
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Preparation of compressible silica aerogel reinforced by bacterial cellulose using tetraethylorthosilicate and methyltrimethoxylsilane co-precursor

机译:用四乙基甲基硅酸盐和甲基三甲氧基硅烷共进细菌纤维素加固可压缩石英气凝胶的制备

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摘要

Silica aerogel is one of the most attractive insulation materials but has not been broadly applied yet because of limitation of its fragile nature. In this work, we synthesized a compressible bacterial cellulose/silica aerogel composite from the co-precursor of tetraethylorthosilicate and methyltrimethoxylsilane by a two-step acid-base catalyzed sol-gel method followed by supercritical CO2 drying. This aerogel composite possessed a series of excellent properties: standing the considerable strain, high resilience, dust-free, low density of 0.066 g/cm(3) and low thermal conductivity of 0.0292 W/(m.K) along with hydrophobicity with a water contact angle of 147 degrees. Weight loss analysis indicated that the thermal stability of the as-prepared composites was about 270 degrees C which primarily depended on the thermal stability of the bacterial cellulose. These outstanding properties were attributed to the Interpenetration Polymer Network structure formed via the co-precursors and the bacterial cellulose and the excellent fabric of the aerogel retained by the supercritical CO2 drying. The results suggest that the as-prepared aerogel composite has potential applications as a suitable insulation material with dust-free and resilience.
机译:Silica Airgel是最具吸引力的绝缘材料之一,但由于其脆弱性质的限制,尚未广泛应用。在这项工作中,通过两步酸碱催化溶胶方法合成了一种可压缩细菌纤维素/二氧化硅气凝胶复合物,其双步酸碱催化溶胶方法,然后通过超临界CO 2干燥。这种气凝胶复合材料具有一系列优异的性能:站立相当大的应变,高弹性,无尘,低密度为0.066g / cm(3),低导热率为0.0292 w /(mk),以及水接触的疏水性角度为147度。减肥分析表明,制备的复合材料的热稳定性约为270℃,主要依赖于细菌纤维素的热稳定性。这些出色的性质归因于通过共前体和细菌纤维素形成的互通聚合物网络结构以及通过超临界CO 2干燥保留的气凝胶的优异织物。结果表明,制备的气凝胶复合材料具有潜在的应用作为具有无尘和弹性的合适的绝缘材料。

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