Functional Carbon Springs Enabled Dynamic Tunable Microwave Absorption and Thermal Insulation

Ze Yu Wang, Zhao Chen Li, Bo Li, An Feng Shi, Long Zhang, Yin Bo Zhu, Fang Ye, Shu Hong Yu

科研成果: 期刊稿件文章同行评审

19 引用 (Scopus)

摘要

Electromagnetic (EM) wave pollution and thermal damage pose serious hazards to delicate instruments. Functional aerogels offer a promising solution by mitigating EM interference and isolating heat. However, most of these materials struggle to balance thermal protection with microwave absorption (MA) efficiency due to a previously unidentified conflict between the optimizing strategies of the two properties. Herein, this study reports a solution involving the design of a carbon-based aerogel called functional carbon spring (FCS). Its unique long-range lamellar multi-arch microstructure enables tunable MA performance and excellent thermal insulation capability. Adjusting compression strain from 0% to 50%, the adjustable effective absorption bandwidth (EAB) spans up to 13.4 GHz, covering 84% of the measured frequency spectrum. Notably, at 75% strain, the EAB drops to 0 GHz, demonstrating a novel “on-off” switchability for MA performance. Its ultralow vertical thermal conductivity (12.7 mW m−1 K−1) and unique anisotropic heat transfer mechanism endow FCS with superior thermal protection effectiveness. Numerical simulations demonstrate that FCS outperforms common honeycomb structures and isotropic porous aerogels in thermal management. Furthermore, an “electromagnetic-thermal” dual-protection material database is established, which intuitively demonstrates the superiority of the solution. This work contributes to the advancement of multifunctional MA materials with significant potential for practical applications.

源语言英语
文章编号2412605
期刊Advanced Materials
36
49
DOI
出版状态已出版 - 5 12月 2024

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