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◆ ACS Applied Polymer Materials2026-01-09· Materials science

Flexible Skeleton-Rigid Enhancement Strategy for SiC/Polyarylate Nanocomposite Aerogels with Integrated Thermal Stability, Sound Absorption, and Electromagnetic Wave Transmission

Huimin Xie, Mengting She, Dan Zhang, Liping Chen, D. Ding, Luoxin Wang, Hua Wang, Siwei Xiong

原始摘要(英文原文)· Original abstract
This work outlines a flexible skeleton-rigid enhancement strategy to meet the needs for low thermal conductivity, sound absorption, noise reduction, and electromagnetic wave transmission in aerospace, electronic communications, and energy vehicles. It involves creating high-aspect-ratio thermotropic liquid crystalline polyarylate (PAR) nanofibers via melt spinning and wet ball milling to form a customizable 3D network. Rod-shaped SiC particles are then interlocked with these nanofibers through high-speed shear, resulting in a uniform preform. Directional freeze-drying and heat treatment follow, inducing molecular chain relaxation and viscous flow on the PAR surface, forming an in situ diffusion bonding layer at the SiC-PAR interface for efficient coupling and structural reinforcement. The SiC/PAR nanocomposite aerogels feature 72% porosity and an ultralow density of 0.0428 g/cm 3 . Increasing the SiC content from 70 to 80 wt % boosts its maximum stress by 32.3%. It offers excellent thermal stability at 250 °C, a low thermal conductivity of 0.035 W m –1 K –1, and a sound absorption coefficient of 0.34 in the 0–5500 Hz range. It also maintains strong electromagnetic wave transmission from 9 to 12 GHz. This makes it suitable for multifunctional uses in thermal insulation, sound absorption, and electromagnetic wave transmission.
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Flexible Skeleton-Rigid Enhancement Strategy for SiC/Polyarylate Nanocomposite Aerogels with Integrated Thermal Stability, Sound Absorption, and Electromagnetic Wave Transmission — 科研速览 Science Skim