Jingnan Ning, Jiamei Luo, Jianning Su, Yihong Gao, Li Z, Ke Liu, Qianli Liu, Hui Zhang, Jianyong Yu
The inherent brittleness of phenolic aerogels significantly limits their application expansion in aerospace thermal protection. A bifunctional silicone prepolymer with both reactivity and flexibility was synthesized by the prereaction of 3-(2,3-epoxypropoxy)propyltrimethoxysilane and methyltrimethoxysilane. Its strong interfacial bonding with the phenolic network formed thick-walled nanostructures, achieving molecular-level compatibility between organosilicon and phenolic materials while enabling efficient stress transfer. Simultaneously introduced flexible segments toughen and refine the microstructure, reconstructing the three-dimensional network of the phenolic aerogel to mitigate brittleness. Results demonstrate that the silicone/phenolic aerogel exhibits a uniform, stable porous structure with low density (0.27 g/cm 3 ) and low room-temperature thermal conductivity (0.0458 W/(m·K)). While enhancing toughness, its compressive strength increases by 215% compared to that of pure phenolic aerogel. The phenolic aerogel prepared via this simplified strategy demonstrates significant potential for practical applications.