Zhang Guihua, Li Chengdong, Wang Yuxiang, Lin Liangliang, Ostrikov Kostya Ken
Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University, Wuxi 214122, China.
International Joint Research Center for Photoresponsive Molecules and Materials, School of Chemical and Material Engineering, Jiangnan University, Wuxi 214122, China.
Gels. 2023 Sep 5;9(9):720. doi: 10.3390/gels9090720.
Synthesis of methylsilsesquioxane aerogels by ambient pressure drying instead of supercritical drying has recently emerged as a major trend, but the issues of low mechanical strength and unstable performance still need to be resolved. This work reveals the microscopic formation mechanisms of gel skeleton based on the kinetic characteristics of methyltrimethoxysilane (MTMS) precursor hydrolysis and the associated sol-gel reactions. The effects of oxalic acid concentration () and hydrolysis time of MTMS solution () on the gelation time, morphologies, microstructures, chemical structure, and compression properties of the as-synthesized methylsilsesquioxane aerogels are investigated. The optimal and are 38.4 mmol/L and 120 min, respectively, endowing the methylsilsesquioxane aerogels with a compression strength of 0.170 MPa and a maximum compression strain of 61.2%. Precise control of the hydrolysis conditions ensures the formation of branched particle-to-particle networks, which is crucial for maximizing the compression properties of methylsilsesquioxane aerogels synthesized under industry-relevant conditions.
通过常压干燥而非超临界干燥合成甲基倍半硅氧烷气凝胶最近已成为一个主要趋势,但机械强度低和性能不稳定的问题仍需解决。这项工作基于甲基三甲氧基硅烷(MTMS)前驱体水解的动力学特征以及相关的溶胶-凝胶反应,揭示了凝胶骨架的微观形成机制。研究了草酸浓度()和MTMS溶液的水解时间()对合成的甲基倍半硅氧烷气凝胶的凝胶化时间、形态、微观结构、化学结构和压缩性能的影响。最佳的和分别为38.4 mmol/L和120分钟,赋予甲基倍半硅氧烷气凝胶0.170 MPa的压缩强度和61.2%的最大压缩应变。精确控制水解条件可确保形成支化的颗粒间网络,这对于在工业相关条件下合成的甲基倍半硅氧烷气凝胶的压缩性能最大化至关重要。