Almeida Cláudio M R, Ghica Mariana E, Durães Luísa
University of Coimbra, CIEPQPF, Department of Chemical Engineering, 3030-790 Coimbra, Portugal.
University of Coimbra, CIEPQPF, Department of Chemical Engineering, 3030-790 Coimbra, Portugal.
Adv Colloid Interface Sci. 2020 Aug;282:102189. doi: 10.1016/j.cis.2020.102189. Epub 2020 Jun 15.
Silica aerogels are remarkable materials with excellent physicochemical properties, such as high porosity and surface area, along with low density and thermal conductivity. In addition to their outstanding properties, these materials are quite interesting due to the possibility to change their chemistry according to intended applications. However, they also show some disadvantages, like low mechanical strength and poor dimensional stability under high temperatures (above 600 °C). Although these aerogels are frequently used as thermal insulators, for high temperature environments some of their properties need to be improved. The mixing with other ceramic thermally resistant phases is a viable approach. Thus, this work presents an overview on alumina-silica-based aerogels, describing their synthesis, processing and properties. The improvement on their properties will be discussed as a function of the amount of refractory phase (alumina) in the silica matrix. The introduction of the alumina phase makes them stable until 1200-1400 °C, maintaining low values of thermal conductivity at very high temperature (below 81 mW m K). Finally, a brief survey on the most promising applications of these materials is presented, with several examples. In catalysis, alumina-silica aerogels have shown equivalent performance when compared to reference catalysts. In the field of thermal insulation, these materials show great potential, especially in high temperatures environments, due to their thermal dimensional stability and inherent low thermal conductivity. As adsorbents, higher stability and adsorption capacity were obtained with the incorporation of the alumina phase in silica aerogels, and these materials can be reused for repeated adsorption/desorption cycles. Indeed, a significant improvement of the aerogel performance by the synergetic effect of combining silica and alumina phases is usually obtained, supporting the expectation of the extension of their fields of application.
二氧化硅气凝胶是具有优异物理化学性质的非凡材料,例如高孔隙率和表面积,以及低密度和低导热率。除了其出色的性能外,这些材料还因其能够根据预期应用改变其化学性质而颇具吸引力。然而,它们也存在一些缺点,比如机械强度低以及在高温(高于600℃)下尺寸稳定性差。尽管这些气凝胶经常用作隔热材料,但在高温环境下,它们的一些性能仍需改进。与其他陶瓷耐热相混合是一种可行的方法。因此,本文对基于氧化铝 - 二氧化硅的气凝胶进行了概述,描述了它们的合成、加工和性能。将根据二氧化硅基体中耐火相(氧化铝)的含量来讨论其性能的改善情况。引入氧化铝相可使它们在1200 - 1400℃下保持稳定,在非常高的温度下(低于81 mW m⁻¹ K⁻¹)仍保持低导热率。最后,本文对这些材料最有前景的应用进行了简要综述,并列举了几个例子。在催化领域,与参考催化剂相比,氧化铝 - 二氧化硅气凝胶表现出相当的性能。在隔热领域,由于其热尺寸稳定性和固有的低导热率,这些材料显示出巨大潜力,尤其是在高温环境中。作为吸附剂,在二氧化硅气凝胶中引入氧化铝相可获得更高的稳定性和吸附容量,并且这些材料可重复用于吸附/解吸循环。实际上,通过二氧化硅和氧化铝相结合的协同效应,通常可显著提高气凝胶的性能,这支持了对其应用领域扩展的期望。