Abstract
The design and synthesis of porous materials represent a critical strategy for advancing multifunctional applications of phthalonitrile resins. By coupling the intrinsic thermomechanical stability derived from heterocyclic macromolecular architectures with the functional benefits imparted by micro- and nanoporous structures, these materials offer enhanced high-performance options to meet demanding service conditions. Herein, we present a novel multi-step methodology for fabricating nanoporous phthalonitrile aerogel composites (PNAC), comprising phthalonitrile solution formulation, fiber reinforcement impregnation, sol-gel reaction, ambient-pressure drying, and post-curing. The resulting aerogel matrix features a three-dimensional porous skeleton composed of interconnected nanoparticles. Thermal analysis reveals exceptional stability, with a 5 % weight loss temperature (Td5) of 466 °C and a char yield of 55 wt% at 1000 °C. Incorporation of needled quartz fiber felt significantly improves the dimensional stability during processing. The prepared PNAC demonstrates a unique combination of properties: low density (0.28 g cm3), ultralow thermal conductivity (54.3 mW·m−1·K−1 at 25 °C; 58.7 mW·m−1·K−1 at 200 °C), pronounced hydrophobicity (static contact angle: 141°), and self-extinguishing behavior. This multifunctional profile positions PNAC as a promising candidate for extreme-environmental applications.
| Original language | English |
|---|---|
| Article number | 112572 |
| Journal | Composites Part B: Engineering |
| Volume | 303 |
| DOIs | |
| State | Published - 15 Aug 2025 |
Keywords
- Ambient pressure drying
- Composites
- Multifunctionality
- Phthalonitrile aerogel
- Sol-gel reaction
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