School of Materials Science and Engineering, Beihang University, Xueyuan Road 37, Beijing 100191, China.
National Key Laboratory of Advanced Functional Composite Materials, Aerospace Research Institute of Materials and Processing Technology, Beijing 100076, China.
Molecules. 2018 Mar 30;23(4):797. doi: 10.3390/molecules23040797.
Polymethylsilsesquioxane (PMSQ) aerogels obtained from methyltrimethoxysilane (MTMS) are well-known high-performance porous materials. Highly transparent and hydrophobic PMSQ aerogel would play an important role in transparent vacuum insulation panels. Herein, the co-precursor approach and supercritical modification method were developed to prepare the PMSQ aerogels with high transparency and superhydrophobicity. Firstly, benefiting from the introduction of tetramethoxysilane (TMOS) in the precursor, the pore structure became more uniform and the particle size was decreased. As the TMOS content increased, the light transmittance increased gradually from 54.0% to 81.2%, whereas the contact angle of water droplet decreased from 141° to 99.9°, ascribed to the increase of hydroxyl groups on the skeleton surface. Hence, the supercritical modification method utilizing hexamethyldisilazane was also introduced to enhance the hydrophobic methyl groups on the aerogel's surface. As a result, the obtained aerogels revealed superhydrophobicity with a contact angle of 155°. Meanwhile, the developed surface modification method did not lead to any significant changes in the pore structure resulting in the superhydrophobic aerogel with a high transparency of 77.2%. The proposed co-precursor approach and supercritical modification method provide a new horizon in the fabrication of highly transparent and superhydrophobic PMSQ aerogels.
聚甲基倍半硅氧烷(PMSQ)气凝胶是由甲基三甲氧基硅烷(MTMS)制备的一种众所周知的高性能多孔材料。高透明和疏水性的 PMSQ 气凝胶将在透明真空隔热板中发挥重要作用。在此,采用共前驱体法和超临界改性法制备了具有高透明度和超疏水性的 PMSQ 气凝胶。首先,由于在先驱体中引入了四甲氧基硅烷(TMOS),使得孔结构更加均匀,粒径减小。随着 TMOS 含量的增加,透光率逐渐从 54.0%增加到 81.2%,而水滴的接触角从 141°降低到 99.9°,这归因于骨架表面羟基数量的增加。因此,还引入了利用六甲基二硅氮烷的超临界改性方法,以增强气凝胶表面的疏甲基。结果,所得到的气凝胶表现出超疏水性,接触角为 155°。同时,所开发的表面改性方法并未导致孔结构发生任何明显变化,从而得到了具有 77.2%高透明度的超疏水性气凝胶。所提出的共前驱体法和超临界改性方法为制备高透明和超疏水性 PMSQ 气凝胶提供了新的思路。