Woignier Thierry, Primera Juan, Alaoui Adil, Dieudonne Philippe, Duffours Laurent, Beurroies Isabelle, Calas-Etienne Sylvie, Despestis Florence, Faivre Annelise, Etienne Pascal
Institut Méditerranéen de Biodiversité et d'Ecologie Marine et Continentale (IMBE), Aix Marseille Université, CNRS, IRD, Avignon Université, UMR CNRS 7263, 13397 Marseille, France.
IRD UMR 237-Campus Agro Environnemental Caraïbes-B.P. 214 Petit Morne, 97232 Le Lamentin, Martinique, France.
Gels. 2020 Dec 26;7(1):1. doi: 10.3390/gels7010001.
Silica aerogels are known to be materials with exceptional characteristics, such as ultra-low density, high surface area, high porosity, high adsorption, and low-thermal conductivity. In addition, these unique properties are mainly related to their specific processing. Depending on the aerogel synthesis procedure, the aerogels texture can be tailored with meso and/or macroporosity. Fractal geometry has been observed and used to describe silica aerogels at nanoscales in certain conditions. In this review paper, we describe the fractal structure of silica aerogels that can develop depending on the synthesis conditions. X-ray and neutron scattering measurements allow to show that silica aerogels can exhibit a fractal structure over one or even more than two orders of magnitude in length. The fractal dimension does not depend directly on the material density but can vary with the synthesis conditions. It ranges typically between 1.6 and 2.4. The effect of the introduction of silica particles or of further thermal treatment or compression of the silica aerogels on their microstructure and their fractal characteristics is also resumed.
众所周知,二氧化硅气凝胶是具有特殊特性的材料,如超低密度、高比表面积、高孔隙率、高吸附性和低导热率。此外,这些独特性能主要与其特定的加工过程有关。根据气凝胶的合成程序,可以通过介孔和/或大孔来调整气凝胶的织构。在某些条件下,人们已经观察到分形几何并用于描述纳米尺度的二氧化硅气凝胶。在这篇综述文章中,我们描述了根据合成条件可能形成的二氧化硅气凝胶的分形结构。X射线和中子散射测量表明,二氧化硅气凝胶在长度上可以在一个甚至超过两个数量级上呈现分形结构。分形维数不直接取决于材料密度,但会随合成条件而变化。其范围通常在1.6至2.4之间。还总结了引入二氧化硅颗粒或对二氧化硅气凝胶进行进一步热处理或压缩对其微观结构和分形特性的影响。