Transforming Thermal Challenges into Functional Advantages through Iron-Polydopamine Interface Engineering of Expandable Microsphere Composites
作者:Xiaofeng Chi, Yikai Xing, Chenxin Yi, Hongbin Tian, Shengtai Zhou, Zhengguang Heng, Liwei Yan, Yang Chen, Huawei Zou, Mei Liang · 发表于:ACS Applied Materials & Interfaces · 年份:2025 · DOI:10.1021/acsami.5c11479 · 被引用次数:1 · 研究领域:Advanced Sensor and Energy Harvesting Materials、Surface Modification and Superhydrophobicity、Electrospun Nanofibers in Biomedical Applications
Developing materials that integrate an intelligent response and ablation resistance for extreme thermal environments presents significant challenges. In this work, functional composites were developed based on iron-complexed polydopamine-modified expandable microspheres (Fe-PDA@EM) embedded in carbon fiber-reinforced polydimethylsiloxane. The deposition of Fe(III)-complexed PDA on microsphere surfaces establishes a catalytic carbonization pathway that synergizes with the thermal expansion of the microspheres. The composites exhibit programmable thermally induced shape transformation with rapid bending actuation under infrared stimulation, enabling adaptive positioning and self-adjusting thermal protection. Fe-PDA catalyzes low-temperature carbonization (275–445 °C), converting expanded microspheres to a stable precursor framework. Under high-temperature exposure (1000 kW/m 2 ), this framework evolves into a unique hierarchical pore architecture that facilitates rapid evacuation of pyrolysis gases while microporous structures serve as effective thermal barriers. Surface temperatures reach 2163 °C, while backside temperatures remain at 68.8 °C, demonstrating exceptional thermal protection. This work demonstrates that thermally responsive actuation and carbonization kinetics can be coordinated to enhance the material performance. The approach provides design principles for next-generation systems in which deformation, sensing, and thermal protection mechanisms operate cooperativ...