MINES ParisTech, PSL Research University, CEMEF-Centre de Mise en Forme des Matériaux, rue Claude Daunesse, CS 10207, 06904 Sophia Antipolis Cedex, France.
MINES ParisTech, PSL Research University, PERSEE-Centre procédés, énergies renouvelables et systèmes énergétiques, rue Claude Daunesse, CS 10207, 06904 Sophia Antipolis Cedex, France.
Carbohydr Polym. 2015 May 20;122:293-300. doi: 10.1016/j.carbpol.2015.01.022. Epub 2015 Jan 16.
Aerogels based on interpenetrated cellulose-silica networks were prepared and characterised. Wet coagulated cellulose was impregnated with silica phase, polyethoxydisiloxane, using two methods: (i) molecular diffusion and (ii) forced flow induced by pressure difference. The latter allowed an enormous decrease in the impregnation times, by almost three orders of magnitude, for a sample with the same geometry. In both cases, nanostructured silica gel was in situ formed inside cellulose matrix. Nitrogen adsorption analysis revealed an almost threefold increase in pores specific surface area, from cellulose aerogel alone to organic-inorganic composite. Morphology, thermal conductivity and mechanical properties under uniaxial compression were investigated. Thermal conductivity of composite aerogels was lower than that of cellulose aerogel due to the formation of superinsulating mesoporous silica inside cellulose pores. Furthermore, composite aerogels were stiffer than each of reference aerogels.
基于互穿纤维素-二氧化硅网络的气凝胶的制备与表征。将湿凝纤维素用二氧化硅相、聚乙氧基二硅氧烷浸渍,采用两种方法:(i)分子扩散和(ii)压差引起的强制流动。后者允许浸渍时间大大缩短,对于具有相同几何形状的样品,浸渍时间缩短了近三个数量级。在这两种情况下,纳米结构的硅胶都在纤维素基质内部原位形成。氮气吸附分析表明,比表面积从单独的纤维素气凝胶增加了近三倍,到有机-无机复合材料。还研究了在单轴压缩下的形态、热导率和力学性能。由于在纤维素孔内形成了超绝热中孔二氧化硅,复合材料气凝胶的热导率低于纤维素气凝胶。此外,复合材料气凝胶比参考气凝胶中的每一种都更硬。